Organic Chemistry - All you need to know from Beginner to PhD

Organic Chemistry (OpenStax based)

Chapter 1: Structure and Bonding

1.1: Why This Chapter?

The ribbon model of the enzyme HMG-CoA reductase showcasing pink, green, brown, and purple ribbons coiled. — Figure 1.1: The enzyme HMG–CoA reductase, shown here as a so-called ribbon model, catalyzes a crucial step in the body’s synthesis of cholesterol. Understanding how this enzyme functions has led to the development of drugs credited with saving millions of lives. (credit: image from the RCSB PDB (rcsb.org) of PBD ID 1HW9 (E.S. Istvan, J. Deisenhofer) (2001) Structural mechanism for statin inhibition of HMG-CoA reductase *Science* 292: 1160–1164/RCSB PDB, CC BY 1.0)

We’ll ease into the study of organic chemistry by first reviewing some ideas about atoms, bonds, and molecular geometry that you may recall from your general chemistry course. Much of the material in this chapter and the next is likely to be familiar to you, but it’s nevertheless a good idea to make sure you understand it before moving on.

What is organic chemistry, and why should you study it? The answers to these questions are all around you. Every living organism is made of organic chemicals. The

proteins that make up your hair, skin, and muscles; the DNA that controls your genetic heritage; the foods that nourish you; and the medicines that heal you are all organic chemicals. Anyone with a curiosity about life and living things, and anyone who wants to be a part of the remarkable advances taking place in medicine and the biological sciences, must first understand organic chemistry. Look at the following drawings for instance, which show the chemical structures of some molecules whose names might be familiar to you. Although the drawings may appear unintelligible at this point, don’t worry. They’ll make perfectly good sense before long, and you’ll soon be drawing similar structures for any substance you’re interested in.

The wedge-dash structures of three different organic compounds.

Historically, the term organic chemistry dates to the mid-1700s, when it was used to mean the chemistry of substances found in living organisms. Little was known about chemistry at that time, and the behavior of the “organic” substances isolated from plants and animals seemed different from that of the “inorganic” substances found in minerals. Organic compounds were generally low-melting solids and were usually more difficult to isolate, purify, and work with than high-melting inorganic compounds.

By the mid-1800s, however, it was clear that there was no fundamental difference between organic and inorganic compounds. The only distinguishing characteristic of organic compounds is that all contain the element carbon.

Organic chemistry, then, is the study of carbon compounds. But why is carbon special? Why, of the more than 197 million presently known chemical compounds, do almost all of them contain carbon? The answers to these questions come from carbon’s electronic structure and its consequent position in the periodic table (Figure 1.2). As a group 4A element, carbon can share four valence electrons and form four strong covalent bonds. Furthermore, carbon atoms can bond to one another, forming long chains and rings. Carbon, alone of all elements, is able to form an immense diversity of compounds, from the simple methane, with one carbon atom, to the staggeringly complex DNA, which can have more than 100 million carbons.

The periodic table showcases the systematic arrangement of elements with labeled groups. Hydrogen, carbon, nitrogen, oxygen, fluorine, phosphorus, sulfur, chlorine, bromine, and iodine are shaded in different colors. — Figure 1.2: Carbon, hydrogen, and other elements commonly found in organic compounds are shown in the colors typically used to represent them.

Not all carbon compounds are derived from living organisms, however. Modern chemists have developed a remarkably sophisticated ability to design and synthesize new organic compounds in the laboratory—medicines, dyes, polymers, and a host of other substances.

Organic chemistry touches the lives of everyone. Its study can be a fascinating undertaking.

1.2: Atomic Structure – The Nucleus

As you might remember from your general chemistry course, an atom consists of a dense, positively charged nucleus surrounded at a relatively large distance by negatively charged electrons (Figure 1.3). The nucleus consists of subatomic particles called neutrons, which are electrically neutral, and protons, which are positively charged. Because an atom is neutral overall, the number of positive protons in the nucleus and the number of negative electrons surrounding the nucleus are the same.

Two schematic views of the structure of an atom featuring a nucleus at the center and encircled by orbiting electrons. — Figure 1.3: A schematic view of an atom. The dense, positively charged nucleus contains most of the atom’s mass and is surrounded by negatively charged electrons. The three-dimensional view on the right shows calculated electron-density surfaces. Electron density increases steadily toward the nucleus and is 40 times greater at the **blue solid surface** than at the **gray mesh surface**.

Although extremely small—about 10^–14 to 10^–15 meter (m) in diameter—the nucleus nevertheless contains essentially all the mass of the atom. Electrons have negligible mass and circulate around the nucleus at a distance of approximately 10^–10 m. Thus, the diameter of a typical atom is about 2 × 10^–10 m, or 200 picometers (pm), where 1 pm = 10^–12 m. To give you an idea of how small this is, a thin pencil line is about 3 million carbon atoms wide. Although most chemists throughout the world use the International System (SI) of units and describe small distances in picometers, many organic chemists and biochemists in the United States still use the unit angstrom (Å) to express atomic distances, where 1 Å = 100 pm = 10^–10 m. As you probably did in your general chemistry course, however, we’ll stay with SI units in this book.

A specific atom is described by its atomic number (Z), which gives the number of protons (or electrons) it contains, and its mass number (A), which gives the total number of protons and neutrons in its nucleus. All the atoms of a given element have the same

atomic number: 1 for hydrogen, 6 for carbon, 15 for phosphorus, and so on; but they can have different mass numbers depending on how many neutrons they contain. Atoms with the same

atomic number but different mass numbers are called isotopes. The element carbon, for instance, has three isotopes that occur naturally, with mass numbers of 12, 13, and 14. Carbon-12 has a natural abundance of 98.89%, carbon-13 has a natural abundance of 1.11%, and carbon-14 has only a negligible natural abundance.

The weighted-average of an element’s naturally occurring isotopes is called atomic weight and is given in unified atomic mass units (u) or daltons (Da) where 1 u or 1 Da is defined as one twelfth the mass of one atom of carbon-12. Thus, the atomic weight is 1.008 u for hydrogen, 12.011 u for carbon, 30.974 u for phosphorus, and so on. Atomic weights of all elements are given in the periodic table in Appendix D.

1.3: Atomic Structure – Orbitals

How are the electrons distributed in an atom? You might recall from your general chemistry course that, according to the quantum mechanical model, the behavior of a specific electron in an atom can be described by a mathematical expression called a

wave equation—the same type of expression used to describe the motion of waves in a fluid. The solution to a wave equation is called a wave function, or orbital, and is denoted by the lowercase Greek letter psi (ψ).

When the square of the wave function, ψ², is plotted in three-dimensional space, an orbital describes the volume of space around a nucleus that an electron is most likely to occupy. You might therefore think of an orbital as looking like a photograph of the electron taken at a slow shutter speed. In such a photo, the orbital would appear as a blurry cloud, indicating the region of space where the electron has been. This electron cloud doesn’t have a sharp boundary, but for practical purposes we can set the limits by saying that an orbital represents the space where an electron spends 90% to 95% of its time.

What do orbitals look like? There are four different kinds of orbitals, denoted s, p, d, and f, each with a different shape. Of the four, we’ll be concerned primarily with s and p orbitals because these are the most common in organic and biological chemistry. An s orbital has a spherical shape, with the nucleus at its center; a p orbital has a dumbbell shape with two parts, or lobes; and four of the five d orbitals have a cloverleaf shape with four lobes, as shown in Figure 1.4. The fifth d orbital is shaped like an elongated dumbbell with a doughnut around its middle.

A characteristic s, p, and d orbital with the nucleus at the center of each. Two cloverleaf-shaped lobes and four cloverleaf-shaped lobes form the p and d orbitals, respectively. — Figure 1.4: Representations of *s, p,* and d orbitals. An s orbital is spherical, a p orbital is dumbbell-shaped, and four of the five d orbitals are cloverleaf-shaped. **Different** lobes of p orbitals are often drawn for convenience as teardrops, but their actual shape is more like that of a doorknob, as indicated.

The orbitals in an atom are organized into different layers around the nucleus called

electron shells, which are centered around the nucleus and have successively larger size and energy. Different shells contain different numbers and kinds of orbitals, and each orbital within a shell can be occupied by two electrons. The first shell contains only a single s orbital, denoted 1s, and thus holds only 2 electrons. The second shell contains one 2s orbital and three 2p orbitals and thus holds a total of 8 electrons. The third shell contains a 3s orbital, three 3p orbitals, and five 3d orbitals, for a total capacity of 18 electrons. These orbital groupings and their energy levels are shown in Figure 1.5.

The energy levels of the first three shells, including orbitals filled with pairs of electrons. The capacities of first, second, and third shells are 2, 8, and 18 electrons, respectively. — Figure 1.5: Energy levels of electrons in an atom. The first shell holds a maximum of 2 electrons in one 1s

orbital; the second shell holds a maximum of 8 electrons in one 2s and three 2p orbitals; the third shell holds a maximum of 18 electrons in one 3s, three 3p, and 3d orbitals; and so on. The two electrons in each orbital are represented by five up and down arrows, ⇅.⇅. Although not shown, the energy level of the 4s orbital falls between 3p and 3d.

The three different p orbitals within a given shell are oriented in space along mutually perpendicular directions, denoted p_x, p_y, and p_z. As shown in Figure 1.6, the two lobes of each p orbital are separated by a region of zero electron density called a node. Furthermore, the two orbital regions separated by the node have different algebraic signs, + and −, in the wave function, as represented by the different colors in Figure 1.4 and Figure 1.6. As we’ll see in Section 1.12, these algebraic signs for different orbital lobes have important consequences with respect to chemical bonding and chemical reactivity.

The orientations of 2px, 2py, and 2pz orbitals with lobes along the x, y, and z-axis respectively. — Figure 1.6: Shapes of the 2p orbitals. Each of the three mutually perpendicular, dumbbell-shaped orbitals has two lobes separated by a node. The two lobes have different algebraic signs in the corresponding wave function, as indicated by the different colors.

1.4: Atomic Structure – Electron Configurations

The lowest-energy arrangement, or

ground-state electron configuration, of an atom is a list of the orbitals occupied by its electrons. We can predict this arrangement by following three rules.

RULE 1
The lowest-energy orbitals fill up first, 1s→2s→2p→3s→3p→4s→1s→2s→2p→3s→3p→4s→3d, according to the following graphic, a statement called the

Aufbau principle. Note that the 4s

orbital lies between the 3p and 3d orbitals in energy.

The orbital arrangement featuring orbitals in order 1s; 2s; 2p-3s; 3p-4s; 3d-4p-5s; 4d-5p-6s; 4f-5d-6p; 5f-6d; and 6f. Arrows denote the order in which orbitals are filled with electrons.

RULE 2
Electrons act in some ways as if they were spinning around an axis, somewhat as the earth spins. This spin can have two orientations, denoted as up (↑) and down (↓). Only two electrons can occupy an

orbital, and they must have opposite spins, a statement called the Pauli exclusion principle.

RULE 3
If two or more empty orbitals of equal energy are available, one electron occupies each with spins parallel until all orbitals are half-full, a statement called Hund’s rule.

Some examples of how these rules apply are shown in Table 1.1. Hydrogen, for instance, has only one electron, which must occupy the lowest-energy orbital. Thus, hydrogen has a 1s ground-state configuration. Carbon has six electrons and the ground-state configuration 1s²2s²2p_x¹2p_y¹, and so forth. Note that a superscript is used to represent the number of electrons in a particular orbital.

The electron configuration of hydrogen. A 1s orbital contains one electron.

The electron configuration of carbon. 1s and 2p orbitals contain a pair of electrons. 2p contains two unpaired electrons and a vacant subshell.

Element	Atomic number	Configuration
Hydrogen	1
Carbon	6
Phosphorus	15

Exercise 1.4.1

What is the ground-state electron configuration of each of the following elements:

(a) Oxygen (b) Nitrogen (c) Sulfur

Exercise 1.4.2

How many electrons does each of the following biological trace elements have in its outermost electron shell?

(a) Magnesium (b) Cobalt (c) Selenium

1.5: Development of Chemical Bonding Theory

By the mid-1800s, the new science of chemistry was developing rapidly, especially in Europe, and chemists had begun to probe the forces holding compounds together. In 1858, the German chemist August Kekulé and the Scottish chemist Archibald Couper independently proposed that, in all organic compounds, carbon is tetravalent—it always forms four bonds when it joins other elements to form stable compounds. Furthermore, said Kekulé, carbon atoms can bond to one another to form extended chains of linked atoms. In 1865, Kekulé provided another major advance when he suggested that carbon chains can double back on themselves to form rings of atoms.

Although Kekulé and Couper were correct in describing the tetravalent nature of carbon, chemistry was still viewed in a two-dimensional way until 1874. In that year, the Dutch chemist Jacobus van ’t Hoff and French chemist Joseph Le Bel added a third dimension to our ideas about organic compounds when they proposed that the four bonds of carbon are not oriented randomly but have specific spatial directions. Van’t Hoff went even further and suggested that the four atoms to which carbon is bonded sit at the corners of a regular tetrahedron, with carbon in the center.

A representation of a tetrahedral carbon atom is shown in Figure 1.7. Note the conventions used to show three-dimensionality: solid lines represent bonds in the plane of the page, the heavy wedged line represents a bond coming out of the page toward the viewer, and the dashed line represents a bond receding back behind the page, away from the viewer. Get used to them; these representations will be used throughout the text.

Two regular tetrahedrons (one with 3 D representation), the wedge-bond structure, and ball and stick model of a tetrahedral carbon atom. — Figure 1.7: A representation of van’t Hoff’s tetrahedral carbon atom. The solid lines represent bonds in the plane of the paper, the heavy wedged line represents a bond coming out of the plane of the page toward the viewer, and the dashed line represents a bond going back behind the plane of the page away from the viewer.

Why, though, do atoms bond together, and how can chemical bonds be described electronically? The why question is relatively easy to answer: atoms bond together because the compound that results is more stable and lower in energy than the separate atoms. Energy—usually as heat—is always released and flows out of the chemical system when a bond forms. Conversely, energy is added to the chemical system when a bond breaks. Making bonds always releases energy, and breaking bonds always absorbs energy. The how question is more difficult. To answer it, we need to know more about the electronic properties of atoms.

We know through observation that eight electrons (an electron octet) in an atom’s outermost shell, or valence shell, impart special stability to the noble-gas elements in group 8A of the periodic table: Ne (2 + 8); Ar (2 + 8 + 8); Kr (2 + 8 + 18 + 8). We also know that the chemistry of the main-group elements on the left and right sides of the periodic table is governed by their tendency to take on the electron configuration of the nearest noble gas. The alkali metals such as sodium in group 1A, for example, achieve a noble-gas configuration by losing the single s electron from their valence shell to form a cation, while the halogens such as chlorine in group 7A achieve a noble-gas configuration by gaining a p electron to fill their

valence shell and form an anion. The resultant ions are held together in compounds like Na⁺ Cl^– by the electrical attraction of unlike charges that we call an ionic bond.

But how do elements closer to the middle of the periodic table form bonds? Look at methane, CH₄, the main constituent of natural gas, for example. The bonding in methane is not ionic because it would take too much energy for carbon (1s² 2s² 2p²) either to gain or lose four electrons to achieve a noble-gas configuration. Instead, carbon bonds to other atoms, not by gaining or losing electrons, but by sharing them. Such a shared-electron bond, first proposed in 1916 by the American chemist G. N. Lewis, is called a covalent bond. The neutral collection of atoms held together by covalent bonds is called a molecule. Ionic compounds such as sodium chloride, however, are not called molecules.

A simple way of indicating the covalent bonds in molecules is to use what are called Lewis structures, or electron-dot structures, in which the valence-shell electrons of an atom are represented as dots. Thus, hydrogen has one dot representing its 1s electron, carbon has four dots (2s² 2p²), oxygen has six dots (2s² 2p⁴), and so on. A stable molecule results whenever a noble-gas configuration of eight dots (an octet) is achieved for all main-group atoms or two dots for hydrogen. Even simpler than Lewis structures is the use of Kekulé structures, or line-bond structures, in which the two-electron covalent bonds are indicated as lines drawn between atoms.

The Lewis and line-bond structures of methane, ammonia, water, and methanol featuring one lone pair on nitrogen and two on oxygen.

The number of covalent bonds an atom forms depends on how many additional valence electrons it needs to reach a noble-gas configuration. Hydrogen has one valence electron (1s) and needs only one more to reach the helium configuration (1s²), so it forms one bond. Carbon has four valence electrons (2s² 2p²) and needs four more to reach the neon configuration (2s² 2p⁶), so it forms four bonds. Nitrogen has five valence electrons (2s² 2p³), needs three more, and forms three bonds; oxygen has six valence electrons (2s² 2p⁴), needs two more, and forms two bonds; and the halogens have seven valence electrons, need one more, and form one bond.

The bond count of various elements. Hydrogen, fluorine, chlorine, bromine, and iodine have one bond but oxygen, nitrogen, and carbon have two, three, and four bonds, respectively.

Valence electrons that are not used for bonding remain as dots in structures and are called lone-pair electrons, or nonbonding electrons. The nitrogen atom in ammonia, NH₃, for instance, shares six valence electrons in three covalent bonds and has its remaining two valence electrons as two dots in a nonbonding lone pair. As a time-saving shorthand,

nonbonding electrons are often omitted when drawing line-bond structures, but you still have to keep them in mind since they’re often crucial in chemical reactions.

Three different representations of N H 3. Central nitrogen shares a pair of electrons with each hydrogen, and has a lone pair that is implied in the third line-bond representation.

Worked Example 1.1: Predicting the Number of Bonds Formed by Atoms in Molecules

How many hydrogen atoms does phosphorus bond to in forming

phosphine, PH_??

Strategy

Identify the periodic group of phosphorus, and find from that how many electrons (bonds) are needed to make an octet.

Solution

Phosphorus is in group 5A of the periodic table and has five valence electrons. It thus needs to share three more electrons to make an octet and therefore bonds to three hydrogen atoms, giving PH₃.

Worked Example 1.2: Drawing Electron-Dot and Line-Bond Structures

Draw both electron-dot and line-bond structures for chloromethane, CH₃Cl.

Strategy

Remember that a covalent bond—that is, a pair of shared electrons—is represented as a line between atoms.

Solution

Hydrogen has one valence electron, carbon has four valence electrons, and chlorine has seven valence electrons. Thus, chloromethane is represented as

The Lewis structure and chemical structure of chloromethane.

Exercise 1.5.11.5.1

Draw a molecule of chloroform, CHCl₃, using solid, wedged, and dashed lines to show its tetrahedral geometry.

Exercise 1.5.2

Convert the following representation of ethane, C₂H₆, into a conventional drawing that uses solid, wedged, and dashed lines to indicate tetrahedral geometry around each carbon (black = C, gray = H).

The ball and stick model of ethane where grey and black spheres represent hydrogen and carbon, respectively.

Answer

Exercise 1.5.3

What are likely formulas for the following substances?
(a) CCl? (b) AlH? (c) CHCl2 (d) SiF (e) CH3NH

Exercise 1.5.4

Write line-bond structures for the following substances, showing all nonbonding electrons

:
(a) CHCl3, chloroform (b) H2S, hydrogen sulfide (c) CH3NH2, methylamine (d) CH3Li, methyllithium

Answer

(a) The Lewis structure and chemical structure of chloroform. (b) (c) (d)

Exercise 1.5.5

Why can’t an organic molecule have the formula C2H7?

1.6: Describing Chemical Bonds – Valence Bond Theory

How does electron sharing lead to bonding between atoms? Two models have been developed to describe covalent bonding:

valence bond theory and molecular orbital theory. Each model has its strengths and weaknesses, and chemists tend to use them interchangeably depending on the circumstances.

Valence bond theory is the more easily visualized of the two, so most of the descriptions we’ll use in this book derive from that approach.

According to valence bond (VB) theory, a covalent bond forms when two atoms approach each other closely and a singly occupied orbital on one atom overlaps a singly occupied orbital on the other atom. The electrons are now paired in the overlapping orbitals and are attracted to the nuclei of both atoms, thus bonding the atoms together. In the H₂ molecule, for instance, the H–H bond results from the overlap of two singly occupied hydrogen 1s orbitals.

The formation of H 2 molecule by overlapping of two 1s orbitals represented as spheres.

The overlapping orbitals in the H₂ molecule have the elongated egg shape we might get by pressing two spheres together. If a plane were to pass through the middle of the bond, the intersection of the plane and the overlapping orbitals would be a circle. In other words, the H–H bond is cylindrically symmetrical, as shown in Figure 1.8. Such bonds, which are formed by the head-on overlap of two atomic orbitals along a line drawn between the nuclei, are called sigma (σ) bonds.

The cylindrical symmetry of H 2 molecule featuring a circular cross-section having two electrons. — Figure 1.8: The cylindrical symmetry of the H–H σ bond in an H₂ molecule. The intersection of a plane cutting through the σ bond is a circle.

During the bond-forming reaction 2H· ⟶ H2, 436 kJ/mol (104 kcal/mol) of energy is released. Because the product H₂ molecule has 436 kJ/mol less energy than the starting 2 H· atoms, the product is more stable than the reactant and we say that the H–H bond has a bond strength of 436 kJ/mol. In other words, we would have to put 436 kJ/mol of energy into the H–H bond to break the H₂ molecule apart into two H atoms (Figure 1.9). For convenience, we’ll generally give energies in both kilocalories (kcal) and the SI unit kilojoules (kJ): 1 kJ = 0.2390 kcal; 1 kcal = 4.184 kJ.

The energy level and electron orientation of H 2 molecule and two hydrogen atoms are shown. The difference in their energy level is 436 kilojoules per mole. — Figure 1.9: Relative energy levels of two H atoms and the H₂ molecule. The H₂ molecule has 436 kJ/mol (104 kcal/mol) less energy than the two separate H atoms, so 436 kJ/mol of energy is **released when the H–H bond forms**

. Conversely, 436 kJ/mol is absorbed when the H–H bond breaks.

How close are the two nuclei in the H₂

molecule? If they are too close, they will repel each other because both are positively charged. Yet if they’re too far apart, they won’t be able to share the bonding electrons. Thus, there is an optimum distance between nuclei that leads to maximum stability (Figure 1.10). Called the bond length, this distance is 74 pm in the H–H molecule. Every covalent bond has both a characteristic bond strength and bond length.

A graph of energy versus internuclear distance. A horizontal line separates the positive and negative energy and a curve with a single trough at 74 ppm is shown. — Figure 1.10: A plot of energy versus internuclear distance for two hydrogen atoms. The distance between nuclei at the minimum energy point is the **bond length.**

1.7: sp³ Hybrid Orbitals and the Structure of Methane

The bonding in the hydrogen molecule is fairly straightforward, but the situation is more complicated in organic molecules with tetravalent carbon atoms. Take methane, CH₄, for instance. As we’ve seen, carbon has four valence electrons (2s² 2p²) and forms four bonds. Because carbon uses two kinds of orbitals for bonding, 2s and 2p, we might expect methane to have two kinds of C–H bonds. In fact, though, all four C–H bonds in methane are identical and are spatially oriented toward the corners of a regular tetrahedron, as shown previously in Figure 1.7. How can we explain this?

An answer was provided in 1931 by Linus Pauling, who showed mathematically how an s orbital and three p orbitals on an atom can combine, or hybridize, to form four equivalent atomic orbitals with tetrahedral orientation. Shown in Figure 1.11, these tetrahedrally oriented orbitals are called sp³ hybrid orbitals. Note that the superscript 3 in the name sp³ tells how many of each type of atomic orbital combine to form the hybrid, not how many electrons occupy it.

The 2s orbital with 2px, 2py, and 2pz orbitals undergoes hybridization to form four s p 3 orbitals oriented tetrahedrally. — Figure 1.11: Four sp³ hybrid orbitals , oriented toward the corners of a regular tetrahedron, are formed by the combination of an s orbital and three p orbitals (red/blue). The sp³ hybrids have two lobes and are unsymmetrical about the nucleus, giving them a directionality and allowing them to form strong bonds to other atoms.

The concept of hybridization explains how carbon forms four equivalent tetrahedral bonds but not why it does so. The shape of the hybrid orbital suggests the answer to why. When an sorbital hybridizes with three p orbitals, the resultant sp³ hybrid orbitals are unsymmetrical about the nucleus. One of the two lobes is larger than the other and can therefore overlap more effectively with an orbital from another atom to form a bond. As a result, sp³ hybrid orbitals form stronger bonds than do unhybridized s or p orbitals.

The asymmetry of sp³ orbitals arises because, as noted previously, the two lobes of a p orbital have different algebraic signs, + and –, in the wave function. Thus, when a porbital hybridizes with an sorbital, the positive p lobe adds to the sorbital but the negative p lobe subtracts from the sorbital. The resultant hybrid orbital is therefore unsymmetrical about the nucleus and is strongly oriented in one direction.When each of the four identical sp³ hybrid orbitals of a carbon atom overlaps with the 1s orbital of a hydrogen atom, four identical C–H bonds are formed and methane results. Each C–H bond in methane has a strength of 439 kJ/mol (105 kcal/mol) and a length of 109 pm. Because the four bonds have a specific geometry, we also can define a property called the bond angle. The angle formed by each H–C–H is 109.5°, the so-called tetrahedral angle. Methane thus has the structure shown in Figure 1.12.

The space-filling model, wedge-dash structure, and ball and stick model of methane. The bond length between C-H is 109 pm, and the bond angle of H-C-H is 109.5 degrees. — Figure 1.12: The structure of methane, showing its 109.5° bond angles.

1.8: sp³ Hybrid Orbitals and the Structure of Ethane

The same kind of orbital hybridization that accounts for the methane structure also accounts for the bonding together of carbon atoms into chains and rings to make possible many millions of organic compounds. Ethane, C₂H₆, is the simplest molecule containing a carbon–carbon bond.

The Lewis structure, Kekule structure, and condensed formula of ethane.

We can picture the ethane molecule by imagining that the two carbon atoms bond to each other by head-on sigma (σ) overlap of an sp³

hybrid orbital from each (Figure 1.13). The remaining three sp³ hybrid orbitals on each carbon overlap with the 1s orbitals of three hydrogens to form the six C–H bonds. The C–H bonds in ethane are similar to those in methane, although a bit weaker: 421 kJ/mol (101 kcal/mol) for ethane versus 439 kJ/mol for methane. The C–C bond is 153 pm in length and has a strength of 377 kJ/mol (90 kcal/mol). All the bond angles of ethane are near, although not exactly at, the tetrahedral value of 109.5°.

The formation of s p 3 - s p 3 sigma bond by two s p 3 carbon (green lobes). The wedge-dash structure and ball and stick model of ethane. — Figure 1.13: The structure of ethane. The carbon–carbon bond is formed by σ overlap of two *sp³* hybrid orbitals. For clarity, the smaller lobes of the sp³ hybrid orbitals are not shown.

Exercise 1.8.1

Draw a line-bond structure for propane, CH₃CH₂CH₃. Predict the value of each bond angle, and indicate the overall shape of the molecule

Exercise 1.8.2

Convert the following molecular model of hexane, a component of gasoline, into a line-bond structure

(black = C, gray = H).

1.9: sp² Hybrid Orbitals and the Structure of Ethylene

The bonds we’ve seen in methane and ethane are called single bonds because they result from the sharing of one electron pair between bonded atoms. It was recognized nearly 150 years ago, however, that carbon atoms can also form double bonds by sharing two electron pairs between atoms or triple bonds by sharing three electron pairs. Ethylene, for instance, has the structure H₂C=CH₂and contains a carbon–carbon double bond, while acetylene has the structure HC≡CH and contains a carbon–carbon triple bond.

How are multiple bonds described by valence bond theory? When we discussed sp³ hybrid orbitals in Section 1.6, we said that the four valence-shell atomic orbitals of carbon combine to form four equivalent sp³ hybrids. Imagine instead that the 2s orbital combines with only two of the three available 2p orbitals. Three sp² hybrid orbitals result, and one 2p orbital remains unchanged. Like sp³ hybrids, sp² hybrid orbitals are unsymmetrical about the nucleus and are strongly oriented in a specific direction so they can form strong bonds. The three sp² orbitals lie in a plane at angles of 120° to one another, with the remaining p-orbital perpendicular to the sp² plane, as shown in Figure 1.14.

The side and top view of s p 2 hybridization. The angle between p and s p 2 lobes is 90 degrees, and between two s p 2 lobes is 120 degrees. — Figure 1.14: sp² Hybridization. The three equivalent **sp² hybrid orbitals** lie in a plane at angles of 120° to one another, and a single unhybridized **p orbital (red/blue)** is perpendicular to the sp² plane.

When two carbons with sp² hybridization approach each other, they form a strong σ bond by sp²–sp² head-on overlap. At the same time, the unhybridized p orbitals interact by sideways overlap to form what is called a pi (π) bond. The combination of an sp²–sp² σ bond and a 2p–2p π bond results in the sharing of four electrons and the formation of a carbon–carbon double bond (Figure 1.15). Note that the electrons in the σ bond occupy the region centered between nuclei, while the electrons in the π bond occupy regions above and below a line drawn between nuclei.

To complete the structure of ethylene, four hydrogen atoms form σ bonds with the remaining four sp² orbitals. Ethylene thus has a planar structure, with H–C–H and H–C–C bond angles of approximately 120°. (The actual values are 117.4° for the H–C–H bond angle and 121.3° for the H–C–C bond angle.) Each C–H bond has a length of 108.7 pm and a strength of 464 kJ/mol (111 kcal/mol).

The formation of carbon-carbon double bond from two s p 2-hybridized carbon atoms. The space-filling model, chemical structure, and ball and stick model of ethylene are shown. — Figure 1.15: The structure of ethylene. One part of the double bond in ethylene results from σ (head-on) overlap of **sp² hybrid orbitals** , and the other part results from π (sideways) overlap of unhybridized **p orbitals (red/blue)**. The π bond has regions of electron density above and below a line drawn between nuclei.

As you might expect, the carbon–carbon double bond in ethylene is both shorter and stronger than the single bond in ethane because it has four electrons bonding the nuclei together rather than two. Ethylene has a C=CC=C

bond length of 134 pm and a strength of 728 kJ/mol (174 kcal/mol) versus a C–C length of 153 pm and a strength of 377 kJ/mol for ethane. The carbon–carbon

double bond is less than twice as strong as a single bond because the sideways overlap in the π part of the double bond is not as great as the head-on overlap in the σ part.

Worked Example 1.3

Drawing Electron-Dot and Line-Bond Structures

Commonly used in biology as a tissue preservative, formaldehyde, CH₂O, contains a carbon–oxygen double bond. Draw electron-dot and line-bond structures of formaldehyde, and indicate the hybridization of the carbon orbitals.

Strategy

We know that hydrogen forms one covalent bond, carbon forms four, and oxygen forms two. Trial and error, combined with intuition, is needed to fit the atoms together.

Solution

There is only one way that two hydrogens, one carbon, and one oxygen can combine:

The electron-dot structure and line-bond structure of formaldehyde. — Like the carbon atoms in ethylene, the carbon atom in formaldehyde is in a double bond and its orbitals are therefore sp²-hybridized.

Exercise 1.9.1

Draw a line-bond structure for propene, CH₃CH=CH₂. Indicate the hybridization of the orbitals on each carbon, and predict the value of each bond angle

.Answer

Exercise 1.9.2

Draw a line-bond structure for 1,3-butadiene, H₂C=CH–CH=CH₂. Indicate the hybridization of the orbitals on each carbon, and predict the value of each bond angle

.Answer

Exercise 1.9.3

A molecular model of aspirin (acetylsalicylic acid) is shown. Identify the hybridization of the orbitals on each carbon atom in aspirin, and tell which atoms have lone pairs of electrons (black = C, red = O, gray = H).

1.10: sp Hybrid Orbitals and the Structure of Acetylene

In addition to forming single and double bonds by sharing two and four electrons, respectively, carbon can also form a triple bond by sharing six electrons. To account for the triple bond in a molecule such as acetylene, H−C≡C−HH−C≡C−H, we need a third kind of hybrid orbital, an sp hybrid. Imagine that, instead of combining with two or three pp orbitals, a carbon 2s orbital hybridizes with only a single p orbital.

Two sp hybrid orbitals result, and two pp orbitals remain unchanged. The two sp orbitals are oriented 180∘180∘ apart on the right-left (x)(x) axis, while the pp orbitals are perpendicular on the up-down (y)(y) axis and the in-out (z)(z) axis, as shown in Figure 1.16.

The orientation of two s p orbitals at 180 degrees on the x-axis. The p orbital in the second image is perpendicular to the y and z axis. — Figure 1.16: sp Hybridization. The two **sp hybrid orbitals** are oriented 180° away from each other, perpendicular to the two remaining **p orbitals (red/blue)**.

When two sp-hybridized carbon atoms approach each other, sp hybrid orbitals on each carbon overlap head-on to form a strong sp–sp σ bond. At the same time, the p_z orbitals from each carbon form a p_z–p_z π bond by sideways overlap, and the p_y orbitals overlap similarly to form a p_y–p_y π bond. The net effect is the sharing of six electrons and formation of a carbon–carbon triple bond. Each of the two remaining sp hybrid orbitals forms a σ bond with hydrogen to complete the acetylene molecule (Figure 1.17).

The formation of carbon-carbon triple bond from two sp-hybridized carbon atoms. The space-filling model, chemical structure, and ball and stick model of acetylene are shown. — Figure 1.17: The structure of acetylene. The two carbon atoms are joined by one sp–*sp σ* bond and two p–*p π* bonds.

As suggested by sp hybridization, acetylene is a linear molecule with H–C–C bond angles of 180°. The C–H bonds have a length of 106 pm and a strength of 558 kJ/mol (133 kcal/mol). The C–C bond length in acetylene is 120 pm, and its strength is about 965 kJ/mol (231 kcal/mol), making it the shortest and strongest of any carbon–carbon bond. A comparison of sp, sp², and sp³ hybridization is given in Table 1.2.

Table 1.2 Comparison of C−C and C−H Bonds in Methane, Ethane, Ethylene, and Acetylene

Molecule	Bond	Bond strength		Bond length (pm)
		(kJ/mol)	(kcal/mol)
Methane, CH4CH4	(sp3)C−H(sp3)C−H	439	105	109
Ethane, CH3CH3CH3CH3	(sp3)C−C(sp3)(sp3)C−C(sp3)	377	90	153
	(sp3)C−H(sp3)C−H	421	101	109
Ethylene, H2C=CH2H2C=CH2	(sp2)C=C(sp2)(sp2)C=C(sp2)	728	174	134
	(sp2)C−H(sp2)C−H	464	111	109
Acetylene, HC≡CHHC≡CH	(sp)C≡C(sp)(sp)C≡C(sp)	965	231	120
	(sp)C−H(sp)C−H	558	133	106

Exercise 1.10.1

Draw a line-bond structure for propyne, CH₃C≡CH. Indicate the hybridization of the orbitals on each carbon, and predict a value for each bond angle

Hybridization of Nitrogen, Oxygen, Phosphorus and Sulfur

The valence-bond concept of orbital hybridization described in the previous four sections is not limited to carbon. Covalent bonds formed by other elements can also be described using hybrid orbitals. Look, for instance, at the nitrogen atom in methylamine (CH₃NH₂), an organic derivative of ammonia (NH₃) and the substance responsible for the odor of rotting fish.

The experimentally measured H–N–H bond angle in methylamine is 107.1°, and the C–N–H bond angle is 110.3°, both of which are close to the 109.5° tetrahedral angle found in methane. We therefore assume that nitrogen forms four sp³-hybridized orbitals, just as carbon does. One of the four sp³ orbitals is occupied by two nonbonding electrons (a lone pair), and the other three hybrid orbitals have one electron each. Overlap of these three half-filled nitrogen orbitals with half-filled orbitals from other atoms (C or H) gives methylamine. Note that the unshared lone pair of electrons in the fourth sp³ hybrid orbital of nitrogen occupies as much space as an N–H bond does and is very important to the chemistry of methylamine and other nitrogen-containing organic molecules.

The chemical structure and ball and stick model of methylamine where nitrogen has one lone pair. The hydrogen-hydrogen bond angle is 107.1 degrees and hydrogen-carbon is 110.3 degrees.

Like the carbon atom in methane and the nitrogen atom in methylamine, the oxygen atom in methanol (methyl alcohol) and many other organic molecules can be described as sp³-hybridized. The C–O–H

bond angle in methanol is 108.5°, very close to the 109.5° tetrahedral angle. Two of the our sp³ hybrid orbitals on oxygen are occupied by nonbonding electron lone pairs, and two are used to form bonds.

The chemical structure and ball and stick model of methanol (methyl alcohol) where oxygen has two lone pairs. The hydrogen-carbon bond angle is 108.5 degrees.

In the periodic table, phosphorus and sulfur are the third-row analogs of nitrogen and oxygen, and the bonding in both can be described using hybrid orbitals. Because of their positions in the third row, however, both phosphorus and sulfur can expand their outer-shell octets and form more than the typical number of covalent bonds. Phosphorus, for instance, often forms five covalent bonds, and sulfur often forms four.

Phosphorus is most commonly encountered in biological molecules in compounds called organophosphates, which contain a phosphorus atom bonded to four oxygens, with one of the oxygens also bonded to carbon. Methyl phosphate, CH₃OPO₃²⁻, is the simplest example. The O–P–O bond angle in such compounds is typically in the range 110° to 112°, implying sp³ hybridization for phosphorus orbitals.

The chemical structure and ball and stick model of methyl phosphate (an organophosphate). The oxygen-oxygen bond angle is nearly 110 degrees.

Sulfur is most commonly encountered in biological molecules either in compounds called thiols, which have a sulfur atom bonded to one hydrogen and one carbon, C–S–H or in sulfides, which have a sulfur atom bonded to two carbons, C–S–C. Produced by some bacteria, methanethiol (CH₃SH) is the simplest example of a thiol, and dimethyl sulfide, H₃C–S–CH₃, is the simplest example of a sulfide. Both can be described by approximate sp³ hybridization around sulfur, although both have significant deviation from the 109.5° tetrahedral angle.

The chemical structures and ball and stick models of methanethiol and dimethyl sulfide (two lone pairs per sulfur). The bond angles around sulfur are 96.5 and 99.1 degrees respectively.

Exercise 1.11.1

Identify all nonbonding lone pairs of electrons in the following molecules, and tell what geometry you expect for each of the indicated atoms.

(a) The oxygen atom in dimethyl ether, CH₃–O–CH₃

(b) The nitrogen atom in trimethylamine,

The chemical structure of trimethylamine.

(c) The phosphorus atom in phosphine, PH₃

(d) The sulfur atom in the amino acid methionine,

The chemical structure of the amino acid methionine.

1.12: Describing Chemical Bonds – Molecular Orbital Theory

We said in Section 1.6 that chemists use two models for describing covalent bonds:

valence bond theory and molecular orbital theory. Having now seen the valence bond approach, which uses hybrid atomic orbitals to account for geometry and assumes the overlap of atomic orbitals to account for electron sharing, let’s look briefly at the molecular orbital approach to bonding. We’ll return to this topic in Chapters 14, 15, and 30 for a more in-depth discussion.

Molecular orbital (MO) theory describes covalent bond formation as arising from a mathematical combination of atomic orbitals (wave functions) on different atoms to form molecular orbitals, so called because they belong to the entire molecule rather than to an individual atom. Just as an atomic orbital, whether unhybridized or hybridized, describes a region of space around an atom where an electron is likely to be found, so a molecular orbital describes a region of space in a molecule where electrons are most likely to be found.

Like an atomic orbital, a molecular orbital has a specific size, shape, and energy. In the H₂ molecule, for example, two singly occupied 1s atomic orbitals combine to form two molecular orbitals. There are two ways for the orbital combination to occur—an additive way and a subtractive way. The additive combination leads to formation of a molecular orbital that is lower in energy and roughly egg-shaped, while the subtractive combination leads to a molecular orbital that is higher in energy and has a node between nuclei (Figure 1.18). Note that the additive combination is a single, egg-shaped, molecular orbital; it is not the same as the two overlapping 1s atomic orbitals of the valence bond description. Similarly, the subtractive combination is a single molecular orbital with the shape of an elongated dumbbell.

The formation of antibonding (with node) and bonding molecular orbitals from two 1s orbitals. The antibonding M O is unfilled and the bonding M O has a pair of electrons. — Figure 1.18: Molecular orbitals of H₂. Combination of two hydrogen 1s atomic orbitals leads to two H₂ molecular orbitals. The lower-energy, **bonding MO** is filled, and the higher-energy, **antibonding MO** is unfilled.

The additive combination is lower in energy than the two hydrogen 1s atomic orbitals and is called a bonding MO because electrons in this MO spend most of their time in the region between the two nuclei, thereby bonding the atoms together. The subtractive combination is higher in energy than the two hydrogen 1s orbitals and is called an antibonding MO because any electrons it contains can’t occupy the central region between the nuclei, where there is a node, and thus can’t contribute to bonding. The two nuclei therefore repel each other.

Just as bonding and antibonding σ molecular orbitals result from the head-on combination of two s atomic orbitals in H₂, so bonding and antibonding π molecular orbitals result from the sideways combination of two p atomic orbitals in ethylene. As shown in Figure 1.19, the lower-energy, π bonding MO has no node between nuclei and results from the combination of p orbital lobes with the same algebraic sign. The higher-energy, π antibonding MO has a node between nuclei and results from the combination of lobes with opposite algebraic signs. Only the bonding MO is occupied; the higher-energy, antibonding MO is vacant. We’ll see in Chapters 14, 15, and 30 that molecular orbital theory is particularly useful for describing π bonds in compounds that have more than one double bond.

The formation of antibonding (with node) and bonding molecular orbitals from two p orbitals. The antibonding M O is unfilled and the bonding M O has a pair of electrons. — Figure 1.19: A molecular orbital description of the C–C π bond in ethylene. The lower-energy, π bonding MO results from an additive combination of p orbital lobes with the same algebraic sign and is filled. The higher-energy, **π antibonding MO** results from a subtractive combination of p orbital lobes with opposite algebraic signs and is unfilled.

1.13: Drawing Chemical Structures

Let’s cover just one more point before ending this introductory chapter. In the structures we’ve been drawing until now, a line between atoms has represented the two electrons in a

covalent bond. Drawing every bond and every atom is tedious, however, so chemists have devised several shorthand ways for writing structures. In

condensed structures, carbon–hydrogen and carbon–carbon single bonds aren’t shown; instead, they’re understood. If a carbon has three hydrogens bonded to it, we write CH₃; if a carbon has two hydrogens bonded to it, we write CH₂; and so on. The compound called 2-methylbutane, for example, is written as follows:

The conversion of chemical structure of 2-methylbutane to two different condensed structures.

Note that the horizontal bonds between carbons aren’t shown in condensed structures—the CH₃, CH₂, and CH units are simply placed next to each other—but vertical carbon–carbon bonds like that of the first of the condensed structures drawn above is shown for clarity. Notice also in the second of the condensed structures that the two CH₃ units attached to the CH carbon are grouped together as (CH₃)₂.

Even simpler than condensed structures are skeletal structures such as those shown in Table 1.3. The rules for drawing skeletal structures are straightforward.

RULE 1
Carbon atoms aren’t usually shown. Instead, a carbon atom is assumed to be at each intersection of two lines (bonds) and at the end of each line. Occasionally, a carbon atom might be indicated for emphasis or clarity.

RULE 2
Hydrogen atoms bonded to carbon aren’t shown. Because carbon always has a valence of 4, we mentally supply the correct number of hydrogen atoms for each carbon.

RULE 3
Atoms other than carbon and hydrogen are shown.

One further comment: Although such groupings as –CH₃, –OH, and –NH₂ are usually written with the C, O, or N atom first and the H atom second, the order of writing is sometimes inverted to H₃C–, HO–, and H₂N– if needed to make the bonding connections clearer. Larger units such as –CH₂CH₃ are not inverted, though; we don’t write H₃CH₂C– because it would be confusing. There are, however, no well-defined rules that cover all cases; it’s largely a matter of preference.

Worked Example 1.4

Interpreting a Line-Bond Structure

Carvone, a substance responsible for the odor of spearmint, has the following structure. Tell how many hydrogens are bonded to each carbon, and give the molecular formula of carvone.

Strategy

The end of a line represents a carbon atom with 3 hydrogens, CH₃; a two-way intersection is a carbon atom with 2 hydrogens, CH₂; a three-way intersection is a carbon atom with 1 hydrogen, CH; and a four-way intersection is a carbon atom with no attached hydrogens.

Solution

The skeletal structure of carvone. Numbers (0 H, 1 H, 2 H, and 3 H) are used to represent the number of hydrogens on each carbon.

Exercise 1.13.1

How many hydrogens are bonded to each carbon in the following compounds, and what is the molecular formula of each substance?

(a) The skeletal structure of adrenaline. (b) The skeletal structure of estrone which is a hormone.

Exercise 1.13.2

Propose

skeletal structures

for compounds that satisfy the following molecular formulas: There is more than one possibility in each case.

(a) C₅H₁₂ (b) C₂H₇N (c) C₃H₆O (d) C₄H₉ClAnswer

Exercise 1.13.3

The following molecular model is a representation of para-aminobenzoic acid (PABA), the active ingredient in many sunscreens. Indicate the positions of the multiple bonds, and draw a skeletal structure (black = C, red = O, blue = N, gray = H).

The ball and stick model of para-aminobenzoic acid abbreviated as PABA.

1.14: Chemistry Matters—Organic Foods- Risk versus Benefit

Contrary to what you may hear in supermarkets or on television, all foods are organic—that is, complex mixtures of organic molecules. Even so, when applied to food, the word organic has come to mean an absence of synthetic chemicals, typically pesticides, antibiotics, and preservatives. How concerned should we be about traces of pesticides in the food we eat? Or toxins in the water we drink? Or pollutants in the air we breathe?

Life is not risk-free—we all take many risks each day without even thinking about it. We decide to ride a bike rather than drive, even though there is a ten times greater likelihood per mile of dying in a bicycling accident than in a car. We decide to walk down stairs rather than take an elevator, even though 32,000 people die from falls each year in the United States. Some of us decide to smoke cigarettes, even though it increases our chance of getting cancer by 50%. But what about risks from chemicals like pesticides?

A photograph shows agricultural pest control operations as a plane releases pesticides over a cultivated farmland — Figure 1.20 How dangerous is the pesticide being sprayed on this crop? (credit: “NRCSAR83001(265)” by USDA Natural Resources Conservation Service/Wikimedia Commons, Public Domain)

One thing is certain: without pesticides, whether they target weeds (herbicides), insects (insecticides), or molds and fungi (fungicides), crop production would drop significantly, food prices would increase, and famines would occur in less developed parts of the world. Take the herbicide atrazine, for instance. In the United States alone, approximately 100 million pounds of atrazine are used each year to kill weeds in corn, sorghum, and sugarcane fields, greatly improving the yields of these crops. Nevertheless, the use of atrazine continues to be a concern because traces persist in the environment. Indeed, heavy atrazine exposure can pose health risks to humans and some animals. Because of these risks, the United States Environmental Protection Agency (EPA) has decided not to ban its use because doing so would result in lower crop yields and increased food costs, and because there is no suitable alternative herbicide available.

The line-bond structure of atrazine featuring one lone pair on each nitrogen.

How can the potential hazards from a chemical like atrazine be determined? Risk evaluation of chemicals is carried out by exposing test animals, usually mice or rats, to the chemical and then monitoring the animals for signs of harm. To limit the expense and time needed, the amounts administered are typically hundreds or thousands of times greater than those a person might normally encounter. The results obtained in animal tests are then distilled into a single number called an LD₅₀, the amount of substance per kilogram of body weight that is a lethal dose for 50% of the test animals. For atrazine, the LD₅₀ value is between 1 and 4 g/kg depending on the animal species. Aspirin, for comparison, has an LD₅₀ of 1.1 g/kg, and ethanol (ethyl alcohol) has an LD₅₀ of 10.6 g/kg.

Table 1.4 lists the LD₅₀ for some other familiar substances. The lower the value, the more toxic the substance. Note, though, that LD₅₀ values only pertain to the effects of heavy exposure for a relatively short time. They say nothing about the risks of long-term exposure, such as whether the substance can cause cancer or interfere with development in the unborn.

Substance	LD₅₀ (g/kg)	Substance	LD₅₀ (g/kg)
Strychnine	0.005	Chloroform	1.2
Arsenic trioxide	0.015	Iron(II) sulfate	1.5
DDT	0.115	Ethyl alcohol	10.6
Aspirin	1.1	Sodium cyclamate	17

So, should we still use atrazine? All decisions involve tradeoffs, and the answer is rarely obvious. Does the benefit of increased food production outweigh possible health risks of a pesticide? Do the beneficial effects of a new drug outweigh a potentially dangerous side effect in a small number of users? Different people will have different opinions, but an honest evaluation of facts is surely the best way to start. As of June 2022, atrazine was still approved for continued use in the United States because the EPA believes that the benefits of increased food production outweigh possible health risks. At the same time, atrazine is little used, though not banned, in the European Union.

2: Polar Covalent Bonds; Acids and Bases

2.1: Why This Chapter?

Understanding organic chemistry means knowing not just what happens but also why and how it happens at the molecular level. In this chapter, we’ll look at some of the ways that chemists describe and account for chemical reactivity, thereby providing a foundation to understand the specific reactions discussed in subsequent chapters. Topics such as bond polarity, the acid–base behavior of molecules, and hydrogen-bonding are a particularly important part of that foundation.

Photo of a poppy flower in bloom. — Figure 2.1: The opium poppy is the source of morphine, one of the first “vegetable alkali,” or *alkaloids*, to be isolated. (credit: “*Papaver somniferum*” by Liz West/Flickr, CC BY 2.0)

We saw in the previous chapter how covalent bonds between atoms are described, and we looked at the valence bond model, which uses hybrid orbitals to account for the observed shapes of organic molecules. Before going on to a systematic study of organic chemistry, however, we still need to review a few fundamental topics. In particular, we need to look more closely at how electrons are distributed in covalent bonds and at some of the consequences that arise when the electrons in a bond are not shared equally between atoms.

2.2: Polar Covalent Bonds – Electronegativity

Up to this point, we’ve treated chemical bonds as either ionic or covalent. The bond in sodium chloride, for instance, is ionic. Sodium transfers an electron to chlorine to produce Na⁺ and Cl^– ions, which are held together in the solid by electrostatic attractions between unlike charges. The C–C bond in ethane, however, is covalent. The two bonding electrons are shared equally by the two equivalent carbon atoms, resulting in a symmetrical electron distribution in the bond. Most bonds, however, are neither fully ionic nor fully covalent but are somewhere between the two extremes. Such bonds are called polar covalent bonds, meaning that the bonding electrons are attracted more strongly by one atom than the other so that the electron distribution between atoms is not symmetrical (Figure 2.2).

A covalent bond, a polar covalent bond, and an ionic bond are arranged from left to right, to highlight the order of increasing ionic character from covalent to ionic bond. — Figure 2.2 The continuum in bonding from covalent to ionic is a result of an unequal distribution of bonding electrons between atoms.

The symbol δ (lowercase Greek letter delta) means partial charge, either partial positive (δ+) for the electron-poor atom or partial negative (δ–) for the electron-rich atom.

Bond polarity is due to differences in electronegativity (EN), the intrinsic ability of an atom to attract the shared electrons in a covalent bond. As shown in Figure 2.3, electronegativities are based on an arbitrary scale, with fluorine the most electronegative (EN = 4.0) and cesium the least (EN = 0.7). Metals on the left side of the periodic table attract electrons weakly and have lower electronegativities, while oxygen, nitrogen, and halogens on the right side of the periodic table attract electrons strongly and have higher electronegativities. Carbon, the most important element in organic compounds, has an intermediate electronegativity value of 2.5.

Green elements on the left side of the periodic table, such as Lithium, have low electronegativity. Red elements on the right side, such as Oxygen, have high electronegativity. — Figure 2.3 Electronegativity values and trends. Electronegativity generally increases from left to right across the periodic table and decreases from top to bottom. The values are on an arbitrary scale, with F = 4.0 and Cs = 0.7. Elements in **red** are the most electronegative, those in **yellow** are medium, and those in **green** are the least electronegative.

As a rough guide, bonds between atoms whose electronegativities differ by less than 0.5 are nonpolar covalent, bonds between atoms whose electronegativities differ by 0.5 to 2 are polar covalent, and bonds between atoms whose electronegativities differ by more than 2 are largely ionic. Carbon–hydrogen bonds, for example, are relatively nonpolar because carbon (EN = 2.5) and hydrogen (EN = 2.1) have similar electronegativities. Bonds between carbon and more electronegative elements such as oxygen (EN = 3.5) and nitrogen (EN = 3.0), by contrast, are polarized so that the bonding electrons are drawn away from carbon toward the electronegative atom. This leaves carbon with a partial positive charge, δ–, and the electronegative atom with a partial negative charge, δ–. An example is the C–O bond in methanol, CH₃OH (Figure 2.4a). Bonds between carbon and less electronegative elements are polarized so that carbon bears a partial negative charge and the other atom bears a partial positive charge. An example is the C–Li bond in methyllithium, CH₃Li (Figure 2.4b).

The chemical structure and ball stick model of methanol and methyllithium, to show the calculation of finding the electronegativity difference in both structures. — Figure 2.4 Polar covalent bonds. : (a) Methanol, CH₃OH, has a polar covalent C–O bond, and **(b)** methyllithium, CH₃Li, has a polar covalent C–Li bond. The computer-generated representations, called electrostatic potential maps, use color to show calculated charge distributions, ranging from **red (electron-rich; δ−)** to **blue (electron-poor; δ+).**

Note in the representations of methanol and methyllithium in Figure 2.4 that a crossed arrow An arrow is positioned horizontally, pointing from left to right, displaying the direction of the dipole moment. At the tail, a small vertical line intersects it. is used to indicate the direction of bond polarity. By convention, electrons are displaced in the direction of the arrow. The tail of the arrow (which looks like a plus sign) is electron-poor (δ+), and the head of the arrow is electron-rich (δ–).

Note also in Figure 2.4 that calculated charge distributions in molecules can be displayed visually with what are called electrostatic potential maps, which use color to indicate electron-rich (red; δ–) and electron-poor (blue; δ+) regions. In methanol, oxygen carries a partial negative charge and is colored red, while the carbon and hydrogen atoms carry partial positive charges and are colored blue-green. In methyllithium, lithium carries a partial positive charge (blue), while carbon and the hydrogen atoms carry partial negative charges (red).

Electrostatic potential maps are useful because they show at a glance the electron-rich and electron-poor atoms in molecules. We’ll make frequent use of these maps throughout the text and will see many examples of how electronic structure correlates with chemical reactivity.

When speaking of an atom’s ability to polarize a bond, we often use the term inductive effect. An inductive effect is simply the shifting of electrons in a σ bond in response to the electronegativity of nearby atoms. Metals, such as lithium and magnesium, inductively donate electrons, whereas reactive nonmetals, such as oxygen and nitrogen, inductively withdraw electrons. Inductive effects play a major role in understanding chemical reactivity, and we’ll use them many times throughout this text to explain a variety of chemical observations.

Exercise 2.2.1

Which element in each of the following pairs is more electronegative?

(a) Li or H (b) B or Br (c) Cl or I (d) C or H

Exercise 2.2.2

Use the δ+/δ– convention to indicate the direction of expected

polarity

for each of the bonds indicated.

(a) H₃C–Cl (b) H₃C–NH₂ (c) H₂N–H (d) H₃C–SH (e) H₃C–MgBr (f) H₃C–F

Exercise 2.2.3

Use the electronegativity values shown in Figure 2.3 to rank the following bonds from least polar to most polar: H₃C–Li, H₃C–K, H₃C–F, H₃C–MgBr, H₃C–OH

Exercise 2.2.4

Look at the following electrostatic potential map of methylamine, a substance responsible for the odor of rotting fish, and tell the direction of polarization of the C–N bond:

The chemical structure and ball stick model of methylamine, plus an electron density map showing highest density near nitrogen.

2.3: Polar Covalent Bonds – Dipole Moments

Just as individual bonds are often polar, molecules as a whole are often polar as well. Molecular

polarity results from the vector summation of all individual bond polarities and lone-pair contributions in the molecule. As a practical matter, strongly polar substances are often soluble in polar solvents like water, whereas less polar substances are insoluble in water.

Net polarity is measured by a quantity called the dipole moment and can be thought of in the following way: assume that there is a center of mass of all positive charges (nuclei) in a molecule and a center of mass of all negative charges (electrons). If these two centers don’t coincide, then the molecule has a net polarity.

The dipole moment, μ (lowercase Greek letter mu), is defined as the magnitude of the charge Q at either end of the molecular dipole times the distance r between the charges, μ = Q × r. Dipole moments are expressed in debyes (D), where 1 D = 3.336 × 10^–30 coulomb meters (C · m) in SI units. For example, the unit charge on an electron is 1.60 × 10^–19 C. Thus, if one positive charge and one negative charge are separated by 100 pm (a bit less than the length of a typical covalent bond), the dipole moment is 1.60 × 10^–29 C · m, or 4.80 D.

μ=Q×

rμ=(1.60×10−19C)(100×10−12m)(1D3.336×10−30C⋅m)=4.80Dμ=Q×

rμ=(1.60×10−19C)(100×10−12m)1D3.336×10−30C⋅m=4.80D

Dipole moments for some common substances are given in Table 2.1. Of the compounds shown in the table, sodium chloride has the largest dipole moment (9.00 D) because it is ionic. Even small molecules like water (μ = 1.85 D), methanol (CH₃OH; μ = 1.70 D), and ammonia (μ = 1.47 D), have substantial dipole moments, however, both because they contain strongly electronegative atoms (oxygen and nitrogen) and because all three molecules have lone-pair electrons. The lone-pair electrons on oxygen and nitrogen stick out into space away from the positively charged nuclei, giving rise to a considerable charge separation and making a large contribution to the

dipole moment.

A line-bond structure of benzene, a six-carbon ring with alternating single and double bonds.

Compound	Dipole moment (D)	Compound	Dipole moment (D)
NaCl	9.00	NH₃	1.47
CH₂O	2.33	CH₃NH₂	1.31
CH₃Cl	1.87	CO₂	0
H₂O	1.85	CH₄	0
CH₃OH	1.70	CH₃CH₃	0
CH₃CO₂H	1.70		0
CH₃SH	1.52

In contrast with water, methanol, and ammonia, molecules such as carbon dioxide, methane, ethane, and benzene have zero dipole moments. Because of the symmetrical structures of these molecules, the individual bond polarities and lone-pair contributions exactly cancel.

The chemical structures of carbon dioxide, methane, ethane, and benzene are arranged from left to right, with the value of the dipole moment equalling zero in each case.

Worked Example 2.1

Predicting the Direction of a Dipole Moment

Make a three-dimensional drawing of methylamine, CH₃NH₂, and show the direction of its dipole moment (μ = 1.31).

Strategy

Look for any lone-pair electrons, and identify any atom with an electronegativity substantially different from that of carbon. (Usually, this means O, N, F, Cl, or Br.) Electron density will be displaced in the general direction of the electronegative atoms and the lone pairs.

Solution

Methylamine contains an electronegative nitrogen atom with a lone pair of electrons. The dipole moment thus points generally from –CH₃ toward the lone pair.

The chemical structure of methylamine and its direction of dipole moment.

Exercise 2.3.1

Ethylene glycol, HOCH₂CH₂OH, may look nonpolar when drawn, but an internal hydrogen bond between the two –OH groups results in a dipole moment. Explain.

Exercise 2.3.2

Make three-dimensional drawings of the following molecules, and predict whether each has a dipole moment. If you expect a dipole moment, show its direction.

(a) H₂C=CH₂ (b) CHCl₃ (c) CH₂Cl₂ (d) H₂C=CCl₂

2.4: Formal Charges

Closely related to the ideas of bond polarity and dipole moment is the assignment of formal charges to specific atoms within a molecule, particularly atoms that have an apparently “abnormal” number of bonds. Look at dimethyl sulfoxide (CH₃SOCH₃), for instance, a solvent commonly used for preserving biological cell lines at low temperature. The sulfur atom in dimethyl sulfoxide has three bonds rather than the usual two and has a formal positive charge. The oxygen atom, by contrast, has one bond rather than the usual two and has a formal negative charge. Note that an electrostatic potential map of dimethyl sulfoxide shows the oxygen as negative (red) and the sulfur as relatively positive (blue), in accordance with the formal charges.

Formal charges, as the name suggests, are a formalism and don’t imply the presence of actual ionic charges in a molecule. Instead, they’re a device for electron “bookkeeping” and can be thought of in the following way: A typical covalent bond is formed when each atom donates one electron. Although the bonding electrons are shared by both atoms, each atom can still be considered to “own” one electron for bookkeeping purposes. In methane, for instance, the carbon atom owns one electron in each of the four C–H bonds. Because a neutral, isolated carbon atom has four valence electrons, and because the carbon atom in methane still owns four, the methane carbon atom is neutral and has no formal charge.

An illustration shows two figures. The first figure shows a carbon atom with an electron on all its four sides. The supporting text reads “An isolated carbon atom owns 4 valence electrons.” The second figure shows a carbon atom with a pair of electrons and a hydrogen atom on all its four sides. The supporting text reads “This carbon atom also owns 8 over 2 equals 4 valence electrons.”

The same is true for the nitrogen atom in ammonia, which has three covalent N–H bonds and two nonbonding electrons (a lone pair). Atomic nitrogen has five valence electrons, and the ammonia nitrogen also has five—one in each of three shared N–H bonds plus two in the lone pair. Thus, the nitrogen atom in ammonia has no formal charge.

An illustration shows two figures. The first figure shows a nitrogen atom with a pair of electrons on one side and a single electron on the other three sides. The supporting text reads “An isolated nitrogen atom owns 5 valence electrons.” The second figure shows a nitrogen atom with a pair of electrons on all the four sides and a hydrogen atom on three sides. The supporting text reads “This nitrogen atom also owns 6 over 2 plus 2 equals 5 valence electrons.”

The situation is different in dimethyl sulfoxide. Atomic sulfur has six valence electrons, but the dimethyl sulfoxide sulfur owns only five—one in each of the two S–C single bonds, one in the S–O single bond, and two in a lone pair. Thus, the sulfur atom has formally lost an electron and therefore has a positive formal charge. A similar calculation for the oxygen atom shows that it has formally gained an electron and has a negative charge. Atomic oxygen has six valence electrons, but the oxygen in dimethyl sulfoxide has seven—one in the O–S bond and two in each of three lone pairs. Thus, the oxygen has formally gained an electron and has a negative formal charge.

An illustration shows a central positively charged sulfur atom with a pair of electrons on one side and single bonded with 2 carbon atoms. Both the carbon atoms are line bonded wedge bonded and dash bonded with 3 hydrogen atoms each. The sulfur atom is single bonded to a negatively charged oxygen atom that shows three pairs of electrons around it. The adjacent calculation for sulfur shows the number of sulfur valence electrons as 6; number of sulfur bonding electrons as 6 and sulfur nonbonding electrons as 2. The formal charge is shown as +1. The calculation for oxygen shows the number of oxygen valence electrons as 6; oxygen bonding electrons as 2 and oxygen nonbonding electrons as 6; The formal charge is shown as -1.

To express the calculations in a general way, the formal charge on an atom is equal to the number of valence electrons in a neutral, isolated atom minus the number of electrons owned by that bonded atom in a molecule. The number of electrons in the bonded atom, in turn, is equal to half the number of bonding electrons plus the nonbonding, lone-pair electrons.

A summary of commonly encountered formal charges and the bonding situations in which they occur is given in Table 2.2. Although only a bookkeeping device, formal charges often give clues about chemical reactivity, so it’s helpful to be able to identify and calculate them correctly.

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Atom	C	N	O	S	P
Structure
Valence electrons	4	4	4	5	5	6	6	6	6	5
Number of bonds	3	3	3	4	2	3	1	3	1	4
Number of nonbonding electrons	1	0	2	0	4	2	6	2	6	0
Formal charge	0	+1	–1	+1	–1	+1	–1	+1	–1	+1

Exercise 2.4.1

Calculate formal charges for the nonhydrogen atoms in the following molecules:

(a) Diazomethane, H2C=N=N¨H2C=N=N¨ :

(b) Acetonitrile oxide, H3C−C≡N−O¨:H3C−C≡N−O¨:

Exercise 2.4.2

Organic phosphate groups occur commonly in biological molecules. Calculate formal charges on the four O atoms in the methyl phosphate dianion.

Structure of phosphorus with double bond to oxygen, two single bonds to oxygen, and single bond to O C H 3, all in brackets with a negative 2 charge overall.

2.5: Resonance

Most substances can be represented unambiguously by the Kekulé line-bond structures we’ve been using up to this point, but an interesting problem sometimes arises. Look at the acetate ion, for instance. When we draw a line-bond structure for acetate, we need to show a double bond to one oxygen and a single bond to the other. But which oxygen is which? Should we draw a double bond to the “top” oxygen and a single bond to the “bottom” oxygen, or vice versa?

An illustration shows a kekulé line bond structure of an acetate ion where a line bond is shown between two carbon atoms. One of the carbon atoms shows a line bond dashed bond and wedged bond with 3 hydrogen atoms. The second carbon atom is double bonded to an oxygen atom with 2 pairs of electrons and also single bonded to a negatively charged oxygen atom with 3 pairs of electrons around it. The second image also shows a line bond structure of an acetate ion where a line bond is shown between two carbon atoms. One of the carbon atoms shows a line bond, dashed bond, and wedged bond with 3 hydrogen atoms. The second carbon atom is double bonded to an oxygen atom with 2 pairs of electrons and also single bonded to a negatively charged oxygen atom with 3 pairs of electrons around it. A resonance form is shown between the two structures.

Although the two oxygen atoms in the acetate ion appear different in line-bond structures, experiments show that they are equivalent. Both carbon–oxygen bonds, for instance, are 127 pm in length, midway between the length of a typical C–O single bond (135 pm) and a typical C=OC=O double bond (120 pm). In other words, neither of the two structures for acetate is correct by itself. The true structure is intermediate between the two, and an electrostatic potential map shows that both oxygen atoms share the negative charge and have equal electron densities (red).

An illustration shows two figures. The first figure is an electrostatic potential map showing almost equal electron densities of hydrogen as well as oxygen in green and red. The ball-and-stick-model of an acetate ion shown on the map has 2 gray balls representing carbon atoms 3 ivory balls representing hydrogen atoms and 2 red balls representing oxygen atoms. The second figure shows the kekulé line bond structures with two resonance forms of an acetate ion.

The two individual line-bond structures for acetate ion are called resonance forms, and their special resonance relationship is indicated by the double-headed arrow between them. The only difference between the two resonance forms is the placement of the π and nonbonding valence electrons. The atoms themselves occupy exactly the same place in both resonance forms, the connections between atoms are the same, and the three-dimensional shapes of the resonance forms are the same.

A good way to think about resonance forms is to realize that a substance like the acetate ion is the same as any other. Acetate doesn’t jump back and forth between two resonance forms, spending part of the time looking like one and part of the time looking like the other. Rather, acetate has a single unchanging structure that we say is a resonance hybrid of the two individual forms and has characteristics of both. The only “problem” with acetate is that we can’t draw it accurately using a familiar line-bond structure—line-bond structures just don’t work for resonance hybrids. The difficulty, however, is with the representation of acetate on paper, not with acetate itself.

Resonance is a very useful concept that we’ll return to on numerous occasions throughout the rest of this book. We’ll see in Chapter 15, for instance, that the six carbon–carbon bonds in aromatic compounds, such as benzene, are equivalent and that benzene is best represented as a hybrid of two

resonance forms. Although each individual resonance form seems to imply that benzene has alternating single and double bonds, neither form is correct by itself. The true benzene structure is a hybrid of the two individual forms, and all six carbon–carbon bonds are equivalent. This symmetrical distribution of electrons around the molecule is evident in an electrostatic potential map.

An illustration shows two figures. The first figure is an electrostatic potential map showing distribution of electrons in a benzene molecule. The bead-and-stick model of benzene shown on this map has 6 gray balls representing carbon atoms and 6 ivory balls representing hydrogen atoms. The second figure shows a hexagonal ring of carbon atoms with alternating single and double bonds and a hydrogen atom single bonded to each of these carbon atoms. The third figure also shows a hexagonal ring of carbon atoms in a benzene molecule but with a change in the position of the alternating single and double bonds between them. The figures also show the two resonance forms of benzene.

2.6: Rules for Resonance Forms

When first dealing with resonance forms, it’s useful to have a set of guidelines that describe how to draw and interpret them. The following rules should be helpful:

RULE 1

Individual resonance forms are imaginary, not real. The real structure is a composite, or resonance hybrid, of the different forms. Species such as the acetate ion and benzene are no different from any other. They have single, unchanging structures, and they don’t switch back and forth between resonance forms. The only difference between these and other substances is in the way they are represented in drawings.

RULE 2

Resonance forms differ only in the placement of their π or nonbonding electrons. Neither the position nor the hybridization of any atom changes from one resonance form to another. In the acetate ion, for instance, the carbon atom is sp²-hybridized and the oxygen atoms remain in exactly the same place in both resonance forms. Only the positions of the π electrons in the C=OC=O bond and the lone-pair electrons on oxygen differ from one form to another. This movement of electrons from one resonance structure to another can be indicated with curved arrows. A curved arrow always indicates the movement of electrons, not the movement of atoms. An arrow shows that a pair of electrons moves from the atom or bond at the tail of the arrow to the atom or bond at the head of the arrow.

An illustration shows two images exhibiting resonance forms. The first illustration image shows a kekulé line bond where two carbon atoms exhibit a single bond between them. The first carbon atom shares a line, dashed, and wedged bond between three hydrogen atoms. The second carbon atom is single bonded to a negatively charged oxygen atom with three pairs of electrons. A pair of electrons is shown moving from this oxygen atom to the carbon atom. These electrons move to the other oxygen atom double bonded to this carbon atom. The second illustration image shows the same kekulé line bond with changes in the oxygen atoms. The oxygen atom from which the electrons were released becomes positively charged with just two pairs of electrons and is double bonded with the carbon atom. The oxygen atom that received electrons becomes negatively charged and shows 3 pairs of electrons and shares a single bond with the carbon atom.

The situation with benzene is similar to that with acetate. The π electrons in the double bonds move, as shown with curved arrows, but the carbon and hydrogen atoms remain in place.

An illustration shows two images exhibiting resonance forms. The first illustration image shows a hexagonal arrangement of 6 carbon atoms with a hydrogen atom single bonded to each of those. Alternating single and double bonds are shown between the carbon atoms. Movement of electrons is shown from the double bonds to the single bonds. The second illustration image shows a structure similar to the first one excepting the change in the bond between the carbon atoms. All the double bonds have become single bonds and vice versa.

RULE 3

Different resonance forms of a substance don’t have to be equivalent. As an example, we’ll see in Chapter 22 that a compound such as acetone, which contains a C=OC=O bond, can be converted into its anion by reaction with a strong base. The resultant anion has two resonance forms. One form contains a carbon–oxygen double bond and has a negative charge on carbon; the other contains a carbon–carbon double bond and has a negative charge on oxygen. Even though the two resonance forms aren’t equivalent, both contribute to the overall resonance hybrid.

An illustration shows three images. The first illustration image shows the molecular structure of acetone in which 3 carbon atoms are shown having single bond. The first and third carbon atoms are shown having a single bond with 3 hydrogen bonds each. The second carbon atom double bonded to an oxygen atom with 2 pairs of electrons. The second and third illustration images shows resonance forms of acetone in reaction to a strong base. The second illustration shows the release of a pair of electrons from the first carbon atom from the acetone structure which gets added to the oxygen atom connected to the second carbon atom. The third illustration image shows the new double bond between the first and second carbon atom and the oxygen atom becoming negatively charged with an additional pair of electrons.

When two resonance forms are nonequivalent, the actual structure of the resonance hybrid resembles the more stable form. Thus, we might expect the true structure of the acetone anion to be more like that of the form that places the negative charge on the electronegative oxygen atom rather than on the carbon.

RULE 4

Resonance forms obey normal rules of valency. A resonance form is like any other structure: the octet rule still applies to second-row, main-group atoms. For example, one of the following structures for the acetate ion is not a valid resonance form because the carbon atom has five bonds and ten valence electrons:

An illustration shows two images with invalid resonance forms. The first illustration image shows a kekulé line bond structure of an acetate ion with a single bond between two carbon atoms. The first carbon atom shows a line dashed and wedged bond with 3 hydrogen atoms. The second carbon atom shows a single bond with a negatively charged oxygen atom with 3 pairs of electrons. Electrons are shown releasing from this oxygen atom. The carbon atom is also shown sharing a double bond with an oxygen atom with 2 pairs of electrons. The second illustration image shows a line bond between two carbon atoms. The first carbon atom shows a line dashed and wedged bond with 3 hydrogen atoms. The second carbon atom becomes negatively charged and shows a double bond with 2 oxygen atoms that have 2 pairs of electrons each.

RULE 5

The resonance hybrid is more stable than any individual resonance form. In other words, resonance leads to stability. Generally speaking, the larger the number of resonance forms a substance has, the more stable the substance is, because its electrons are spread out over a larger part of the molecule and are closer to more nuclei. We’ll see in Chapter 15, for instance, that a benzene ring is more stable because of resonance than might otherwise be expected.

2.7: Drawing Resonance Forms

Look back at the resonance forms of the acetate ion and the acetone anion shown in the previous section. The pattern seen there is a common one that leads to a useful technique for drawing resonance forms. In general, any three-atom grouping with a p-orbital on each atom has two resonance forms:

Two resonance forms in a three-atom grouping of X, Y, and Z with one double bond in the structure shown separated by a double-headed arrow.

The atoms X, Y, and Z in the general structure might be C, N, O, P, S, or others, and the asterisk (*) might mean that the p orbital on atom Z is vacant, that it contains a single electron, or that it contains a lone pair of electrons. The two resonance forms differ simply by an exchange in position of the multiple bond and the asterisk from one end of the three-atom grouping to the other.

By learning to recognize such three-atom groupings within larger structures, resonance forms can be systematically generated. Look, for instance, at the anion produced when H⁺ is removed from 2,4-pentanedione by reaction with a base. How many resonance structures does the resultant anion have?

The chemical reaction of 2,4 – pentanedione with a base.

The 2,4-pentanedione anion has a lone pair of electrons and a formal negative charge on the central carbon atom, next to a C=OC=O bond on the left. The O=C–C:−O=C–C:− grouping is a typical one for which two resonance structures can be drawn.

An arrow mechanism of resonance in a 2,4-pentanedione anion.

Just as there is a C=OC=O bond to the left of the lone pair, there is a second C=OC=O bond to the right. Thus, we can draw a total of three resonance structures for the 2,4-pentanedione anion.

Three resonance forms of 2,4-pentanedione, separated by two double-headed arrows.

Worked Example 2.2

Drawing Resonance Forms for an Anion

Draw three resonance structures for the carbonate ion, CO₃²^–.

The chemical structure of a carbonate ion.

Strategy

Look for three-atom groupings that contain a multiple bond next to an atom with a p orbital. Then exchange the positions of the multiple bond and the electrons in the p orbital. In the carbonate ion, each singly bonded oxygen atom with three lone pairs and a negative charge is adjacent to the C=OC=O double bond, giving the grouping .

Solution

Exchanging the position of the double bond and an electron lone pair in each grouping generates three resonance structures.

Three resonance structures of the carbonate ion, featuring the lone pairs and charges on the oxygen atoms in each case and separated by two double-headed arrows.

Worked Example 2.3

Drawing Resonance Forms for a Radical

Draw three resonance forms for the pentadienyl radical, where a radical is a substance that contains a single, unpaired electron in one of its orbitals, denoted by a dot (·).

The chemical structure of pentadienyl radical, featuring an unpaired electron on the right-most carbon atom.

Strategy

Find the three-atom groupings that contain a multiple bond next to an atom with a p orbital

Solution

The unpaired electron is on a carbon atom next to a C=CC=C bond, giving a typical three-atom grouping that has two resonance forms.

Two resonance forms of pentadienyl radical, featuring an unpaired electron on the right-most carbon atom in one case and the central carbon atom in the next, separated by a double-headed arrow.

In the second resonance form, the unpaired electron is next to another double bond, giving another three-atom grouping and leading to another resonance form.

Two resonance forms of pentadienyl radical, featuring an unpaired electron on the central carbon atom in one case and the left-most carbon atom in the next, separated by a double-headed arrow.

Thus, the three resonance forms for the pentadienyl radical are:

All three resonance forms of pentadienyl radical, separated by double-headed arrows.

Exercise 2.7.1

Which of the following pairs of structures represent resonance forms, and which do not? Explain.

(a) chemical= (b) Chemical structures of 2-methyl-4-ethylhexa-1,3-diene on the left and 2-ethyl-4-methylpenta-1,3-diene on the right.

Exercise 2.7.2

Draw the indicated number of resonance forms for each of the following substances:

(a) The methyl phosphate anion, CH₃OPO₃²^– (3 resonance structures)

(b) The nitrate anion, NO₃^– (3)

(c) The allyl cation, H₂C=CH–CH₂⁺ (2)

(d) The benzoate anion (2)

The chemical structure of benzoate anion where a carboxylate group COO- is attached to a benzene ring.

2.8: Acids and Bases – The Brønsted-Lowry Definition

Perhaps the most important of all concepts related to electronegativity and polarity is that of acidity and basicity. We’ll soon see, in fact, that the acid–base behavior of organic molecules explains much of their chemistry. You may recall from a course in general chemistry that two definitions of acidity are frequently used: the Brønsted–Lowry definition and the Lewis definition. We’ll look at the Brønsted–Lowry definition in this and the following three sections and then discuss the Lewis definition in Section 2.12.

A Brønsted–Lowry acid is a substance that donates a hydrogen ion, H⁺, and a Brønsted–Lowry base is a substance that accepts a hydrogen ion. (The name proton is often used as a synonym for H⁺ because loss of the valence electron from a neutral hydrogen atom leaves only the hydrogen nucleus—a proton.) When gaseous hydrogen chloride dissolves in water, for example, a polar HCl molecule acts as an acid and donates a proton, while a water molecule acts as a base and accepts the proton, yielding chloride anion (Cl^–) and hydronium cation (H₃O⁺). This and other acid–base reactions are reversible, so we’ll write them with double, forward-and-backward arrows.

An illustration shows four images of electrostatic potential maps. The first illustration image titled “Acid” shows an electrostatic potential map with colors ranging from purple to yellowish green. A ball and stick model is shown that has an ivory ball representing hydrogen and a yellowish green ball representing chlorine. The second illustration image titled “Base” shows an electrostatic potential map with colors ranging from dark purple to orange. A ball and stick model is shown that has a red ball representing an oxygen atom and two ivory balls representing hydrogen. An electron dot structure given below shows an oxygen atom with 2 pairs of electrons and single bonded with 2 hydrogen atoms upon reversible reaction gives two other images. The third illustration image shows an electrostatic potential map in red with a yellowish green ball representing chlorine which is titled “Conjugate base.” The fourth illustration image shows a purple colored electrostatic potential map with a ball-and-stick model, with a red ball representing oxygen and 3 ivory balls representing hydrogen. The structure given below shows a positively charged oxygen atom with a pair of electrons sharing a single bond with 3 hydrogen atoms.

Chloride ion, the product that results when the acid HCl loses a proton, is called the conjugate base of the acid, and hydronium ion, the product that results when the base H₂O gains a proton, is called the conjugate acid of the base. Other common mineral acids such as H₂SO₄ and HNO₃ behave similarly, as do organic acids such as acetic acid, CH₃CO₂H.

In a general sense,

An illustration shows a general expression where when an acid loses a hydrogen molecule shows as “H-A” and combines with a base that takes the proton represented by “B” with two electrons gives a reversible reaction with the combination of a loss of proton shown as “A superscript minus” labeled “Conjugate Base” and a “Conjugate Acid” shown as “H minus B superscript plus.”

For example:

An illustration shows an acid represented by a structure that has a carbon atom single bonded to a methyl group and double bonded to an oxygen atom. It is also single bonded to another oxygen atom with two pairs of electrons which in turn is single bonded to a hydrogen atom. This acid is combined with a base that is shown as a second illustration image where a hydrogen atom is single bonded to a negatively charged oxygen with 3 pairs of electrons. These on undergoing a reversible reaction result in a conjugate base that shows a central carbon atom that is single bonded to a methyl group double bonded to an oxygen atom and single bonded to another negatively charged oxygen atom with 3 pairs of electrons; and a conjugate acid that shows an oxygen with two pairs of electrons single bonded to 2 hydrogen atoms. The second illustration shows an acid represented by a structure that has an oxygen atom with 2 pairs of electrons single bonded to 2 hydrogen atoms combined with a base that shows a nitrogen atom with a pair of electrons and is single bonded to 3 hydrogen atoms. On undergoing a reversible reaction this combination results in a conjugate base that shows a negatively charged oxygen atom single bonded to a hydrogen atom and a conjugate acid that is shown as a positively charged nitrogen atom single bonded to 3 hydrogen atoms.

Notice that water can act either as an acid or as a base, depending on the circumstances. In its reaction with HCl, water is a base that accepts a proton to give the hydronium ion, H₃O⁺. In its reaction with ammonia (NH₃), however, water is an acid that donates a proton to give ammonium ion (NH₄⁺) and hydroxide ion, HO^–.

Exercise 2.8.1

Nitric acid (HNO₃) reacts with ammonia (NH₃) to yield ammonium nitrate. Write the reaction, and identify the acid, the base, the conjugate acid product, and the conjugate base product.

2.9: Acid and Base Strength

Different acids differ in their ability to donate H⁺. Stronger acids, such as HCl, react almost completely with water, whereas weaker acids, such as acetic acid (CH₃CO₂H), react only slightly. The exact strength of a given acid HA in water solution is described using the acidity constant (K_a) for the acid-dissociation equilibrium.

HA(aq)+H2O(l)↽−−⇀H3O+(aq)+A−(aq)HA(aq)+H2O(l)↽−−⇀H3O+(aq)+A−(aq)

the acid ionization constant is written

Ka=[H3O+][A−][HA]Ka=[H3O+][A−][HA]

Recall from general chemistry that the solvent concentration does not appear in the equilibrium expression, and that brackets [ ] around a substance refer to the concentration of the enclosed species in moles per liter (molarity).

Note

Equilibrium constant expressions are actually ratios of activities, and the value of K is determined at the limit of infinite dilution of the solutes. In these very dilute solutions, the activity of the solvent has a value of unity (1) and the activity of each solute can be approximated by its molar concentration.

Stronger acids have their equilibria toward the right and thus have larger acidity constants, whereas weaker acids have their equilibria toward the left and have smaller acidity constants. The range of K_a values for different acids is enormous, running from about 10¹⁵ for the strongest acids to about 10^–60 for the weakest. Common inorganic acids such as H₂SO₄, HNO₃, and HCl have K_a’s in the range of 10¹ to 10⁹, while organic acids generally have K_a’s in the range of 10^–5 to 10^–15. As you gain experience, you’ll develop a rough feeling for which acids are “strong” and which are “weak” (always remembering that the terms are relative, not absolute).

Acid strengths are normally expressed using pK_a values rather than K_a values, where the pK_a is the negative common logarithm of the K_a:

pK_a=−log K_a

A stronger acid (larger K_a) has a smaller pK_a, and a weaker acid (smaller K_a) has a larger pK_a. Table 2.3 lists the pK_a’s of some common acids in order of their strength, and a more comprehensive table is given in Appendix B.

Notice that the pK_a value shown in Table 2.3 for water is 14.00, which results from the following calculation.

H2O(l)+H2O(l)↽−−⇀H3O+(aq)+OH−(aq)(2.9.1)(2.9.1)H2O(l)+H2O(l)↽−−⇀H3O+(aq)+OH−(aq)

with Kw=Ka=[H3O+][OH−](2.9.2)(2.9.2)Kw=Ka=[H3O+][OH−]

As explained above, because the water is the solvent and has an activity of unity (1), water is not shown explicitly in the equilibrium constant expression for K_w

Notice also in Table 2.3 that there is an inverse relationship between the acid strength of an acid and the base strength of its conjugate base. A strong acid has a weak conjugate base, and a weak acid has a strong conjugate base. To understand this inverse relationship, think about what is happening to the acidic hydrogen in an acid–base reaction. A strong acid is one that loses H⁺ easily, meaning that its conjugate base holds the H⁺ weakly and is therefore a weak base. A weak acid is one that loses H⁺ with difficulty, meaning that its conjugate base holds the proton tightly and is therefore a strong base. The fact that HCl is a strong acid, for example, means that Cl^– does not hold H⁺ tightly and is thus a weak base. Water, on the other hand, is a weak acid, meaning that OH^– holds H⁺ tightly and is a strong base.

	Acid	Name	pK_a	Conjugate base	Name
	CH₃CH₂OH	Ethanol	16.00	CH₃CH₂O^–	Ethoxide ion
H₂O	Water	14.00	HO^–	Hydroxide ion
HCN	Hydrocyanic acid	9.31	CN^–	Cyanide ion
H₂PO₄^–	Dihydrogen phosphate ion	7.21	HPO₄²^–	Hydrogen phosphate ion
CH₃CO₂H	Acetic acid	4.76	CH₃CO₂^–	Acetate ion
H₃PO₄	Phosphoric acid	2.16	H₂PO₄^–	Dihydrogen phosphate ion
H₃O⁺	Hydronium ion	0.0	H₂O	Water
HNO₃	Nitric acid	–1.3	NO₃^–	Nitrate ion
HCl	Hydrochloric acid	–7.0	Cl^–	Chloride ion

Exercise 2.9.1

The amino acid phenylalanine has pK_a = 1.83, and tryptophan has pK_a = 2.83. Which is the stronger acid?

Structures of the amino acids phenylalanine and tryptophan. Both have carboxylic acid groups, alpha amino groups, and aryl groups. Tryptophan has nitrogen in ring system.

Answer

Exercise 2.9.2

Amide ion, H₂N^–, is a much stronger base than hydroxide ion, HO^–. Which is the stronger acid, NH₃ or H₂O? Explain.

2.10: Predicting Acid-Base Reactions from pKa Values

Compilations of pK_a values like those in Table 2.3 and Appendix B are useful for predicting whether a given acid–base reaction will take place, because H⁺ will always go from the stronger acid to the stronger base. That is, an acid will donate a proton to the conjugate base of a weaker acid, and the conjugate base of a weaker acid will remove a proton from a stronger acid. Since water (pK_a = 14.00) is a weaker acid than acetic acid (pK_a = 4.76), for example, hydroxide ion holds a proton more tightly than acetate ion does. Hydroxide ion will therefore react to a large extent with acetic acid, CH₃CO₂H, to yield acetate ion and H₂O.

Another way to predict acid–base reactivity is to remember that the product conjugate acid in an acid–base reaction must be weaker and less reactive than the starting acid and the product conjugate base must be weaker and less reactive than the starting base. In the reaction of acetic acid with hydroxide ion, for example, the product conjugate acid (H₂O) is weaker than the starting acid (CH₃CO₂H), and the product conjugate base (CH₃CO₂^–) is weaker than the starting base (OH^–).

The reaction of a stronger acid with a stronger base as reactants on the left side of the reversible arrow and weaker acid and weaker base as products on the right side.

Worked Example 2.4

Predicting Acid Strengths from pK_a Values

Water has pK_a = 14.00, and acetylene has pK_a = 25. Which is the stronger acid? Does hydroxide ion react to a significant extent with acetylene?

The reaction of acetylene with the hydroxide ion as reactants on the left side of the arrow and the alkynide ion and water as products on the right side.

Strategy

When comparing two acids, the one with the lower pK_a is stronger. Thus, water is a stronger acid than acetylene and gives up H⁺ more easily.

Solution

Because water is a stronger acid and gives up H⁺ more easily than acetylene, the HO^– ion must have less affinity for H⁺ than the HC≡C:−HC≡C:− ion. In other words, the anion of acetylene is a stronger base than hydroxide ion, and the reaction will not proceed significantly as written.

Worked Example 2.5

Calculating K_a from pK_a

According to the data in Table 2.3, acetic acid has pK_a = 4.76. What is its K_a?

Strategy

Since pK_a is the negative logarithm of K_a, it’s necessary to use a calculator with an ANTILOG or INV LOG function. Enter the value of the pK_a (4.76), change the sign (–4.76), and then find the antilog (1.74 × 10^–5).

Solution

K_a = 1.74 × 10^–5.

Exercise 2.10.1

Will either of the following reactions take place to a significant extent as written, according to the data in Table 2.3?

(a) hydrocyanic=
(b) Ethanol and sodium cyanide with an arrow pointing toward products sodium ethoxide and hydrocyanic acid. There is a question mark over the arrow.

Exercise 2.10.2

Ammonia, NH₃, has pK_a ≈ 36, and acetone has pK_a ≈ 19. Will the following reaction take place to a significant extent?

Exercise 2.10.3

What is the K_a of HCN if its pK_a = 9.31?

2.11: Organic Acids and Organic Bases

Many of the reactions we’ll be seeing in future chapters, including practically all biological reactions, involve organic acids and organic bases. Although it’s too early to go into the details of these processes now, you might keep the following generalities in mind:

Organic Acids

Organic acids are characterized by the presence of a positively polarized hydrogen atom (blue in electrostatic potential maps) and are of two main kinds: acids such as methanol and acetic acid that contain a hydrogen atom bonded to an electronegative oxygen atom (O–H) and those such as acetone (Section 2.6) that contain a hydrogen atom bonded to a carbon atom next to a C=OC=O bond (O=C–C–HO=C–C–H).

Electrostatic potential maps and wedge-dash structures of methanol, acetic acid, and acetone along with their respective p K a values, 15.54, 4.76, and 19.3.

Methanol contains an O–H bond and is a weak acid, while acetic acid also contains an O–H bond and is a somewhat stronger acid. In both cases, acidity is due to the fact that the conjugate base resulting from loss of H⁺ is stabilized by having its negative charge on a strongly electronegative oxygen atom. In addition, the conjugate base of acetic acid is stabilized by resonance (Section 2.5 and Section 2.6).

Two reactions show the formation of methoxide ion from methanol and two resonance structures of an acetate ion from acetic acid. In both reactions, a hydrogen ion is eliminated.

The acidity of acetone and other compounds with C=OC=O bonds is due to the fact that the conjugate base resulting from the loss of H⁺ is stabilized by resonance. In addition, one of the resonance forms stabilizes the negative charge by placing it on an electronegative oxygen atom.

In a reaction, acetone loses a hydrogen ion to form two resonance structures of acetone enolate, separated by a double-headed arrow.

Electrostatic potential maps of the conjugate bases from methanol, acetic acid, and acetone are shown in Figure 2.5. As you might expect, all three show a substantial amount of negative charge (red) on oxygen.

Electrostatic potential maps and condensed structural formulas of methoxide ion, acetate ion, and acetone enolate, showing high electron density around all oxygen atoms and the carbon atom involved in enolate resonance. — Figure 2.5 Electrostatic potential maps of the conjugate bases of **(a)** methanol, **(b)** acetic acid, and **(c)** acetone. The electronegative oxygen atoms stabilize the negative charge in all three.

Compounds called carboxylic acids, which contain the –CO₂H grouping, occur abundantly in all living organisms and are involved in almost all metabolic pathways. Acetic acid, pyruvic acid, and citric acid are examples. You might note that at the typical pH of 7.3 found within cells, carboxylic acids are usually dissociated and exist as their carboxylate anions, –CO₂^–.

The structural formulas of acetic acid, pyruvic acid, and citric acid.

Organic Bases

Organic bases are characterized by the presence of an atom (reddish in electrostatic potential maps) with a lone pair of electrons that can bond to H⁺. Nitrogen-containing compounds such as methylamine are the most common organic bases and are involved in almost all metabolic pathways, but oxygen-containing compounds can also act as bases when reacting with a sufficiently strong acid. Note that some oxygen-containing compounds can act both as acids and as bases depending on the circumstances, just as water can. Methanol and acetone, for instance, act as acids when they donate a proton but as bases when their oxygen atom accepts a proton.

Electrostatic potential maps and molecular structures of methylamine, methanol, and acetone.

Substances called amino acids, so-named because they are both amines (–NH₂) and carboxylic acids (–CO₂H), are the building blocks from which the proteins in all living organisms are made. Twenty different amino acids go into making up proteins—alanine is an example. Interestingly, alanine and other amino acids exist primarily in a doubly charged form called a zwitterion rather than in the uncharged form. The zwitterion form arises because amino acids have both acidic and basic sites within the same molecule and therefore undergo an internal acid–base reaction.

In a reversible conversion, uncharged form of alanine converts to the more favored zwitterion form of alanine.

2.12: Acids and Bases – The Lewis Definition

The Lewis definition of acids and bases is more encompassing than the Brønsted–Lowry definition because it’s not limited to substances that donate or accept just protons. A Lewis acid is a substance that accepts an electron pair, and a Lewis base is a substance that donates an electron pair. The donated electron pair is shared between the acid and the base in a covalent bond.

In a reaction, Lewis base B, with a filled orbital, and Lewis acid A, with a vacant orbital, form the product molecule BA.

Lewis Acids and the Curved Arrow Formalism

The fact that a Lewis acid is able to accept an electron pair means that it must have either a vacant, low-energy orbital or a polar bond to hydrogen so that it can donate H⁺ (which has an empty 1s

orbital). Thus, the Lewis definition of acidity includes many species in addition to H⁺. For example, various metal cations, such as Mg²⁺, are Lewis acids because they accept a pair of electrons when they form a bond to a base. We’ll also see in later chapters that certain metabolic reactions begin with an acid–base reaction between Mg²⁺ as a Lewis acid and an organic diphosphate or triphosphate ion as the Lewis base

A reaction shows Lewis acid (M g 2 positive) reacting with Lewis base (an organodiphosphate ion) to form an acid-base complex.

In the same way, compounds of group 3A elements, such as BF₃ and AlCl₃, are Lewis acids because they have unfilled valence orbitals and can accept electron pairs from Lewis bases, as shown in Figure 2.6. Similarly, many transition-metal compounds, such as TiCl₄, FeCl₃, ZnCl₂, and SnCl₄, are Lewis acids.

A reversible reaction shows boron trifluoride (Lewis acid) reacting with dimethyl ether (Lewis base) to form an acid-base complex. Electrostatic potential maps of reactants and product are shown above. — Figure 2.6 The reaction of boron trifluoride, a Lewis acid, with dimethyl ether, a Lewis base. The Lewis acid accepts a pair of electrons, and the Lewis base donates a pair of nonbonding electrons. Note how the movement of electrons from the Lewis base to the Lewis acid is indicated by a curved arrow. Note also how, in electrostatic potential maps, **the boron becomes more negative (red)** after reaction because it has gained electrons and **the oxygen atom becomes more positive (blue)** because it has donated electrons.

Look closely at the acid–base reaction in Figure 2.6, and notice how it’s shown. Dimethyl ether, the Lewis base, donates an electron pair to a vacant valence orbital of the boron atom in BF₃, a Lewis acid. The direction of electron-pair flow from base to acid is shown using a curved arrow, just as the direction of electron flow from one resonance structure to another was shown using curved arrows in Section 2.6. We’ll use this curved-arrow notation throughout the remainder of this text to indicate electron flow during reactions, so get used to seeing it.

Some further examples of Lewis acids follow:

Some neutral proton donors, such as water, carboxylic acid, phenol, as well as some cations like lithium ions, and some metal compounds like aluminum chloride, are collectively labeled Lewis acids.

Lewis Bases

The Lewis definition of a base—a compound with a pair of nonbonding electrons that it can use to bond to a Lewis acid—is similar to the Brønsted–Lowry definition. Thus, H₂O, with its two pairs of nonbonding electrons on oxygen, acts as a Lewis base by donating an electron pair to an H⁺ in forming the hydronium ion, H₃O⁺.

In a reversible reaction, hydrogen chloride acting as an acid reacts with water acting as a base, to form a hydronium ion and chloride ion.

In a more general sense, most oxygen- and nitrogen-containing organic compounds can act as Lewis bases because they have lone pairs of electrons. A divalent oxygen compound has two lone pairs of electrons, and a trivalent nitrogen compound has one lone pair. Note in the following examples that some compounds can act as both acids and bases, just as water can. Alcohols and carboxylic acids, for instance, act as acids when they donate an H⁺ but as bases when their oxygen atom accepts an H⁺.

Some Lewis bases are alcohol, ether, aldehyde, ketone, acid chloride, carboxylic acid, ester, amide, amine, sulfide, and organotriphosphate ion.

Note also that some Lewis bases, such as carboxylic acids, esters, and amides, have more than one atom with a lone pair of electrons and can therefore react at more than one site. Acetic acid, for example, can be protonated either on the doubly bonded oxygen atom or on the singly bonded oxygen atom. The reaction normally occurs only once in such instances, and the more stable of the two possible protonation products are formed. For acetic acid, protonation by reaction with sulfuric acid occurs on the doubly bonded oxygen because that product is stabilized by two resonance forms.

In a reversible reaction, acetic acid (base) reacts with sulfuric acid to form two resonance structures of a protonated product. The not formed product shows protonation on single bonded oxygen.

Worked Example 2.6

Using Curved Arrows to Show Electron Flow

Using curved arrows, show how acetaldehyde, CH₃CHO, can act as a Lewis base.

Strategy

A Lewis base donates an electron pair to a Lewis acid. We therefore need to locate the electron lone pairs on acetaldehyde and use a curved arrow to show the movement of a pair toward the H atom of the acid.

Solution

In a reversible reaction, acetaldehyde reacts with H A to form a protonated product and an anion.

Exercise 2.12.1

Using curved arrows, show how the species in part (a) can act as Lewis bases in their reactions with HCl, and show how the species in part (b) can act as Lewis acids in their reaction with OH^–.

(a) CH₃CH₂OH, HN(CH₃)₂, P(CH₃)₃

(b) H₃C⁺, B(CH₃)₃, MgBr₂

Exercise 2.12.2

Imidazole, which forms part of amino acid histidine, can act as both an acid and a base.

Line-angle structure, ball-and-stick model, and electrostatic potential map of imidazole along with line-angle structure of histidine.

(a) Look at the electrostatic potential map of imidazole, and identify the most acidic hydrogen atom and the most basic nitrogen atom.

(b) Draw structures for the resonance forms of the products that result when imidazole is protonated by an acid and deprotonated by a base.

2.13: Noncovalent Interactions Between Molecules

When thinking about chemical reactivity, chemists usually focus their attention on bonds, the covalent interactions between atoms within molecules. Also important, however, particularly in large biomolecules like proteins and nucleic acids, are a variety of interactions between molecules that strongly affect molecular properties. Collectively called either intermolecular forces, van der Waals forces, or noncovalent interactions, they are of several different types: dipole–dipole forces, dispersion forces, and hydrogen bonds.

Dipole–dipole forces occur between polar molecules as a result of electrostatic interactions among dipoles. The forces can be either attractive or repulsive depending on the orientation of the molecules—attractive when unlike charges are together and repulsive when like charges are together. The attractive geometry is lower in energy and therefore predominates (Figure 2.7).

(a) Eight polar molecules arranged closely attract due to proximity of opposite charges. (b) Six polar molecules arranged loosely repel due to proximity of like charges. — Figure 2.7: Dipole–dipole forces cause polar molecules (a) to attract one another when they orient with unlike charges together, but (b) to repel one another when they orient with like charges together.

Dispersion forces occur between all neighboring molecules and arise because the electron distribution within molecules is constantly changing. Although uniform on a time-averaged basis, the electron distribution even in nonpolar molecules is likely to be nonuniform at any given instant. One side of a molecule may, by chance, have a slight excess of electrons relative to the opposite side, giving the molecule a temporary dipole. This temporary dipole in one molecule causes a nearby molecule to adopt a temporarily opposite dipole, resulting in a tiny attraction between the two (Figure 2.8). Temporary molecular dipoles have only a fleeting existence and are constantly changing, but their cumulative effect is often strong enough to hold molecules close together so that a substance is a liquid or solid rather than a gas.

Space-filling models of four pentane molecules arranged vertically, each with partial positive charge (at top left and bottom left) and partial negative charge (at top right and bottom right). — Figure 2.8: Attractive dispersion forces in nonpolar molecules are caused by temporary dipoles, as shown in these models of pentane, C₅H₁₂.

Perhaps the most important noncovalent interaction in biological molecules is the hydrogen bond, an attractive interaction between a hydrogen atom bonded to an electronegative O or N atom and an unshared electron pair on another O or N atom. In essence, a hydrogen bond is a very strong dipole–dipole interaction involving polarized O–H or N–H bonds.

Electrostatic potential maps of water and ammonia clearly show the positively polarized hydrogens (blue) and the negatively polarized oxygens and nitrogens (red).

Structures and electrostatic plots depict hydrogen bonding shown by a dotted line between two water molecules and two ammonia molecules.

Hydrogen bonding has enormous consequences for living organisms. Hydrogen bonds cause water to be a liquid rather than a gas at ordinary temperatures, they hold enzymes in the shapes necessary for catalyzing biological reactions, and they cause strands of deoxyribonucleic acid (DNA) to pair up and coil into the double helix that stores genetic information.

The space-filling model and chemical structure of a deoxyribonucleic acid segment, featuring hydrogen bonds between both strands.

One further point before leaving the subject of noncovalent interactions: biochemists frequently use the term hydrophilic, meaning “water-loving,” to describe a substance that is attracted to water and the term hydrophobic, meaning “water-fearing,” to describe a substance that is not strongly attracted to water. Hydrophilic substances, such as table sugar, often have a number of –OH groups in their structure so they can form hydrogen bonds and dissolve in water, whereas hydrophobic substances, such as vegetable oil, do not have groups that form hydrogen bonds and do not dissolve in water.

Chemical structures of sucrose (a disaccharide), with lots of O H bonds, and animal fat (a triester), with no O H bonds.

Exercise 2.13.1

Of the two vitamins A and C, one is hydrophilic and water-soluble while the other is hydrophobic and fat-soluble. Which is which?

2.14: Chemistry Matters—Alkaloids- From Cocaine to Dental Anesthetics

Just as ammonia (NH₃) is a weak base, there are a large number of nitrogen-containing organic compounds called amines that are also weak bases. In the early days of organic chemistry, basic amines derived from natural sources were known as vegetable alkali, but they are now called alkaloids. More than 20,000 alkaloids are known. Their study provided much of the impetus for the growth of organic chemistry in the nineteenth century and remains today an active and fascinating area of research.

Photo of a closeup of a cocoa bush, with bright green leaves and red berries. — Figure 2.9 The coca bush *Erythroxylon coca,* native to upland rain forest areas of Colombia, Ecuador, Peru, Bolivia, and western Brazil, is the source of the alkaloid cocaine. (credit: “*Erythroxylum coca*” by Danna Guevara/Wikimedia Commons, CC BY 4.0)

Many alkaloids have pronounced biological properties, and approximately 50% of pharmaceutical agents used today are derived from naturally occurring amines. As just three examples, morphine, an analgesic agent (painkiller), is obtained from the opium poppy Papaver somniferum. Ephedrine, a bronchodilator, decongestant, and appetite suppressant, is obtained from Ephedra sinica, an evergreen shrub native to Mongolia and northeastern China. Cocaine, both an anesthetic and a stimulant, is obtained from the coca bush Erythroxylon coca, endemic to the upland rain forest areas of central South America. (And yes, there really was a small amount of cocaine in the original Coca-Cola recipe, although it was removed in 1906.)

The wedge-dash structures of morphine, ephedrine, and cocaine.

Cocaine itself is rarely used medically because it is too addictive, but its anesthetic properties provoked a long search for related but nonaddictive compounds. This search ultimately resulted in the synthesis of the “caine” anesthetics that are commonly used today in dental and surgical anesthesia. Procaine, the first such compound, was synthesized in 1898 and marketed under the name Novocain. It was rapidly adopted and remains in use today as a topical anesthetic. Other related compounds with different activity profiles followed: Lidocaine, marketed as Xylocaine, was introduced in 1943, and mepivacaine (Carbocaine) in the early 1960s. More recently, bupivacaine (Marcaine) and prilocaine (Citanest) have gained popularity. Both are quick-acting, but the effects of bupivacaine last for 3 to 6 hours while those of prilocaine fade after 45 minutes. Notice some structural similarity of all the caines to cocaine itself.

The bond-line structures of Procaine (Novocain) and Lidocaine (Xylocaine).

The bond-line structures of Mepivacaine (Carbocaine), Bupivacaine (Marcaine), and Prilocaine (Citanest).

An estimate from the U.S. National Academy of Sciences is that less than 1% of all living species have been characterized. Thus, alkaloid chemistry remains an active area of research, and innumerable substances with potentially useful properties have yet to be discovered. Undoubtedly even the caine anesthetics will become obsolete at some point, perhaps supplanted by newly discovered alkaloids.

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Compound	Line-bond structure	Skeletal structure
Isoprene, C₅H₈
Methylcyclohexane, C₇H₁₄
Phenol, C₆H₆O