5 Steps to a 5: AP Chemistry 2020 - Moore J.T., Langley R.H. 2020

STEP 4 Review the Knowledge You Need to Score High
CHAPTER 10 Spectroscopy, Light, and Electrons

IN THIS CHAPTER

Summary: In developing the model of the atom, it was thought initially that all subatomic particles obeyed the laws of classical physics—that is, they were tiny bits of matter behaving like macroscopic pieces of matter. Later, however, it was discovered that this particle view of the atom could not explain many of the observations being made. About this time, the dual particle/wave model of matter began to gain favor. It was discovered that in many cases, especially when dealing with the behavior of electrons, describing some of their behavior in terms of waves explained the observations much better. Thus, the quantum mechanical model of the atom was born.

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Keywords and Equations

Speed of light, c = 3.0 × 108 ms−1

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Planck’s constant, h = 6.63 × 10−34 Js

The Nature of Light

Light is a part of the electromagnetic spectrum—radiant energy composed of gamma rays, X-rays, ultraviolet light, visible light, etc. Figure 10.1 shows the electromagnetic spectrum.

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Figure 10.1 The electromagnetic spectrum.

The energy of the electromagnetic spectrum moves through space as waves that have three associated variables—frequency, wavelength, and amplitude. The frequency, n, is the number of waves that pass a point per second. Wavelength (l) is the distance between two identical points on a wave. Amplitude is the height of the wave and is related to the intensity (or brightness, for visible light) of the wave. Figure 10.2 shows the wavelength and amplitude of a wave.

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Figure 10.2 Wavelength and amplitude of a wave.

The energy associated with a certain frequency of light is related by the equation:

E = where h is Planck’s constant = 6.63 × 10−34 Js

In developing the quantum mechanical model of the atom, it was found that the electrons can have only certain distinct quantities of energy associated with them, and that in order for the atom to change its energy it has to absorb or emit a certain amount of energy. The energy that is emitted or absorbed is really the difference in the two energy states and can be calculated by:

ΔE =

All electromagnetic radiation travels at about the same speed in a vacuum, 3.0 × 108 m/s. This constant is called the speed of light (c). The product of the frequency and the wavelength is the speed of light:

c = νλ

Let’s apply some of the relationships. What wavelength of radiation has photons of energy 7.83 × 10−19 J?

Answer:

Using the equations

ΔE = and c = νλ

we get

ν = ΔE/h and λ = c/ν

Inserting the appropriate values:

ν = ΔE/h = 7.83 × 10−19 J/6.63 × 10−34 Js = 1.18 × 1015 s−1

Then:

λ = c/ν = (3.0 × 108 m/s)/(1.18 × 1015s−1) = 2.5 × 10−7m

This answer could have been calculated more quickly by combining the original two equations to give:

λ = hcE

Wave Properties of Matter

The concept that matter possesses both particle and wave properties was first postulated by de Broglie in 1925. He introduced the equation λ = h/mv, which indicates a mass (m) moving with a certain velocity (v) would have a specific wavelength (λ) associated with it. (Note that this v is the velocity, not ν the frequency.) If the mass is very large (a locomotive), the associated wavelength is insignificant. However, if the mass is very small (an electron), the wavelength is measurable. The denominator may be replaced with the momentum of the particle (p = mv).

Atomic Spectra

Late in the 19th century, scientists discovered that when the vapor of an element was heated it gave off a line spectrum, a series of fine lines of colors, instead of a continuous spectrum like a rainbow. This was used in the developing quantum mechanical model as evidence that the energy of the electrons in an atom was quantized; that is, there could only be certain distinct energies (lines) associated with the atom. Niels Bohr developed the first modern atomic model for hydrogen using the concepts of quantized energies. The Bohr model postulated a ground state for the electrons in the atom, an energy state of lowest energy, and an excited state, an energy state of higher energy. In order for an electron to go from its ground state to an excited state, it must absorb a certain amount of energy. If the electron dropped back from that excited state to its ground state, that same amount of energy would be emitted. Bohr’s model also allowed scientists to develop a method of calculating the energy associated with a particular energy level for the electron in the hydrogen atom:

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where n is the energy state. This equation can then be modified to calculate the energy difference between any two energy levels:

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Atomic Orbitals

Bohr’s model worked well for hydrogen, the simplest atom, but didn’t work very well for any others. In the early 1900s, Schrödinger developed a more involved model and set of equations that better described atoms by using quantum mechanical concepts. His model introduced a mathematical description of the electron’s motion called a wave function or atomic orbital. Squaring the wave function (orbital) gives the volume of space in which the probability of finding the electron is high. This is commonly referred to as the electron cloud.

Schrödinger’s equation required the use of three quantum numbers to describe each electron within an atom, corresponding to the orbital size, shape, and orientation in space. It was also found that a quantum number concerning the spin of the electron was needed.

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The first quantum number is the principal quantum number (n). It describes the energy (related to size) of the orbital and relative distance from the nucleus. The allowed (by the mathematics of the Schrödinger equation) values are positive integers (1, 2, 3, 4, etc.). The smaller the value of n, the closer the orbital is to the nucleus. The number n is sometimes called the atom’s shell.

The second quantum number is the angular momentum quantum number (l). Its value is related to the principal quantum number and has allowed values of 0 up to (n − 1). For example, if n = 3, then the possible values of l would be 0, 1, and 2 (3 − 1). This value of l defines the shape of the orbital:

• If l = 0, the orbital is called an s orbital and has a spherical shape with the nucleus at the center of the sphere. The greater the value of n, the larger the sphere.

• If l = 1, the orbital is called a p orbital and has two lobes of high electron density on either side of the nucleus. This makes for an hourglass or dumbbell shape.

• If l = 2, the orbital is a d orbital and can have variety of shapes.

• If l = 3, the orbital is an f orbital, with more complex shapes.

Figure 10.3, on the next page, shows the shapes of the s, p, and d orbitals. These are sometimes called sublevels or subshells.

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Figure 10.3 The shapes of the s, p, and d atomic orbitals.

The third quantum number is the magnetic quantum number (ml). It describes the orientation of the orbital around the nucleus. The possible values of ml depend on the value of the angular momentum quantum number, l. The allowed values for ml are −l through zero to +l. For example, for l = 2 the possible values of ml would be −2, −1, 0, +1, +2. This is why, for example, if l = 1 (a p orbital), then there are three p orbitals corresponding to ml values of −1, 0, +1. This is also shown in Figure 10.3.

The fourth quantum number, the spin quantum number (ms), indicates the direction the electron is spinning. There are only two possible values for ms, + ½ and −½.

The quantum numbers for the six electrons in carbon would be:

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Therefore, the electron configuration of carbon is 1s22s22p2.

Photoelectron (Photoemission) Spectroscopy (PES)

Photoelectron spectroscopy is one of a group of related techniques where high-energy photons remove an electron from an atom in a photoelectric effect process. The method relies on a measurement of the kinetic energy of the emitted electron. The kinetic energy is equal to the energy of the photon minus the binding energy of the electron. The binding energy is the energy holding the electron in the atom and can be rather difficult to measure.

Figure 10.4 shows the PES spectrum of lithium. Lithium has three electrons, 2 1s electrons and 1 2s electrons. The 2s is less tightly bound (right peak) than the 1s electrons (left peak). The left peak is twice as high as the right peak because there are 2 1s electrons compared to 1 2s electron. X-ray photons can excite core electrons. For example, it is possible to focus on the 1s electrons of an oxygen atom. The binding energy is in part related to the effective nuclear charge experienced by the electron. In compounds, other atoms bonded to the atom of interest can influence the effective nuclear charge. Atoms donating electron density to the atom of interest decrease the effective nuclear charge, while electron-withdrawing atoms lead to an increase in the effective nuclear charge. An important factor in whether an atom donates or withdraws electron density is the relative electronegativity of the two atoms. This experimental method can be used to give information on which atoms are bonded to each other.

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Figure 10.4 PES Spectrum of lithium.

Experiments

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No experimental questions related to this chapter have appeared on the AP exam in recent years.

Common Mistakes to Avoid

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1. Be sure not to confuse wavelength and frequency.

2. The speed of light is 3.0 × 108 m/s. The exponent is positive.

3. The value of n is never zero.

4. The values of l and ml include zero.

5. Do not confuse velocity (v) and frequency (ν).

Image Review Questions

Use these questions to review the content of this chapter and practice for the AP Chemistry exam. First are 16 multiple-choice questions similar to what you will encounter in Section I of the AP Chemistry exam. Following those is a long free-response question like the ones in Section II of the exam. To make these questions an even more authentic practice for the actual exam, time yourself following the instructions provided.

Multiple-Choice Questions

Answer the following questions in 25 minutes. You may not use a calculator. You may use the periodic table and the equation sheet at the back of this book.

1. Which of the following represents the electron arrangement for the least reactive element?

(A) Image

(B) Image

(C) Image

(D) Image

2. Which of the following might refer to a transition element?

(A) Image

(B) Image

(C) Image

(D) Image

3. Which of the following electron arrangements refers to the most chemically reactive element?

(A) Image

(B) Image

(C) Image

(D) Image

4. Which of the following electron arrangements represents an atom in an excited state?

(A) Image

(B) Image

(C) Image

(D) Image

5. The ground-state configuration of Fe2+ is which of the following?

(A) 1s22s22p63s23p63d54s1

(B) 1s22s22p63s23p63d6

(C) 1s22s22p63s23p63d64s2

(D) 1s22s22p63s23p63d84s2

6. Which of the following contains only atoms that are diamagnetic in their ground state?

(A) Kr, Ca, and P

(B) Ne, Be, and Zn

(C) Ar, K, and Ba

(D) He, Sr, and C

7. Which of the following is the electron configuration of a halogen?

(A) 1s21p62s22p3

(B) 1s22s22p63s23p64s23d104p65s24d1

(C) 1s22s22p63s23p63d3

(D) 1s22s22p5

8. Which of the following is a possible configuration for a transition metal atom?

(A) 1s21p62s22p3

(B) 1s22s22p63s23p64s23d104p65s24d1

(C) 1s22s22p63s23p63d3

(D) 1s22s22p5

9. The following are some electron configurations reported by four students. Which of the following electron configurations is not possible?

(A) 1s22s32p3

(B) 1s22s22p63s23p64s23d104p6

(C) 1s22s22p63s23p63d3

(D) 1s22s22p5

10. Which of the following is a possible configuration for a transition metal ion?

(A) 1s21p62s22p3

(B) 1s22s22p63s23p64s23d104p65s24d1

(C) 1s22s22p63s23p63d3

(D) 1s22s22p5

11. If all the electrons are present in pairs, a substance is said to be diamagnetic. If there is at least one electron by itself in an orbital, a substance is said to be paramagnetic. In which of the following groups are all atoms diamagnetic?

(A) Be, O, and N

(B) Mg, Se, and Xe

(C) Kr, Be, and Zn

(D) At, Sn, and Ba

12. Which of the following explains why oxygen atoms, in their ground state, are paramagnetic?

(A) Pauli exclusion principle

(B) electron shielding

(C) Hund’s rule

(D) Heisenberg uncertainty principle

13. An atomic orbital can hold no more than two electrons; this is a consequence of which of the following?

(A) Pauli exclusion principle

(B) electron shielding

(C) Hund’s rule

(D) Heisenberg uncertainty principle

14. Why does the 4s orbital fill before the 3d orbital starts to fill?

(A) Pauli exclusion principle

(B) electron shielding

(C) Hund’s rule

(D) Heisenberg uncertainty principle

15. Calcium reacts with element X to form an ionic compound. If the ground-state electron configuration of X is 1s22s22p4, what is the simplest formula for this compound?

(A) CaX

(B) CaX2

(C) Ca4X2

(D) Ca2X2

16. In 1927, Clinton Davisson and Lester Germer experimentally confirmed what was known as the de Broglie hypothesis by observing the diffraction of electrons. This led to general acceptance of the de Broglie equation. Which of the following best explains the diffraction of electrons?

(A) Pauli exclusion principle

(B) Hund’s rule

(C) the wave properties of matter

(D) Heisenberg uncertainty principle

Image Answers and Explanations

1. D—This configuration represents a noble gas (neon). The outer s and p orbitals are filled.

2. C—Transition elements have partially filled d orbitals. This configuration is for the metal zirconium, Zr.

3. B—The single electron in the s orbital indicates that this is the very reactive alkali metal lithium.

4. A—The 1s orbital is not filled. One indication of excited states is one or more inner orbitals being unfilled.

5. B—The electron configuration for iron is 1s22s22p63s23p63d64s2. To produce an iron(II) ion, the two 4s electrons are removed first.

6. B—The elements that are normally diamagnetic are those in the same columns of the periodic table as Be, Zn, and He because all of the electrons are paired. Atoms in all other columns are normally paramagnetic.

7. D—Halogens have a valence shell with s2p5.

8. B—Transition metals have partially filled d orbitals (d1−10), along with an s1 or s2.

9. A—A 2s3 configuration is not possible as s-orbitals cannot accommodate more than two electrons.

10. C—The outer s electrons are not present in most transition metal ions; however, d electrons may be present. C could be V2+, Cr3+, or Mn4+ (among other choices).

11. C—Atoms with only completely filled shells or subshells are diamagnetic; all others are paramagnetic. From the choices given, the elements with complete shells or subshells are Be, Mg, Xe, Kr, Zn, and Ba. Only one answer consists of atoms from this group. It might be helpful to consult the periodic table, as these elements are in groups 2, 12, and 18.

12. C—The four electrons in the oxygen 2p orbitals are arranged with one pair and two unpaired electrons with spins parallel. This makes the oxygen atom paramagnetic. This arrangement is due to Hund’s rule.

13. A—The Pauli exclusion principle restricts the number of electrons that can occupy a single orbital.

14. B—The d orbitals are shielded more efficiently than the s orbitals. Thus, the less shielded d orbitals do not fill as readily as s orbitals with similar energy.

15. A—Calcium will form a +2 ion (Ca2+), and X will need to gain two electrons to fill its outer shell and become a —2 ion (X2−). The simplest formula for a compound containing a +2 ion and a —2 ion would be CaX. The other answers involve different charges or a formula that has not been simplified.

16. C—Diffraction is a wave phenomenon; therefore, the observation of diffraction proves the wave properties of electrons (matter).

Image Free-Response Question

You have 15 minutes to answer the following question. You may use a calculator and the tables in the back of the book.

Question

(a) The bond energy of fluorine is 159 kJ mol—1.

i. Determine the energy, in J, of a photon of light needed to break an F—F bond.

ii. Determine the frequency of this photon in s—1.

(b) Barium imparts a characteristic green color to a flame. The wavelength of this light is 551 nm. Determine the energy involved in kJ/mol.

Image Answer and Explanation

(a) If you do not remember them, several of the equations given at the beginning of the exam are necessary. In addition, the values of Planck’s constant, Avogadro’s number, and the speed of light are necessary. These constants are also given on the exam.

i. This is a simple conversion problem:

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Give yourself 1 point if you got this answer.

ii. This part requires the equation ΔE = . (This equation is given on the equation page of the AP exam.)

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Give yourself 1 point for this answer. If you got the wrong answer in the preceding part but used it correctly here (in place of the 2.64 × 10—19 J), you still get 1 point.

(b) This can be done as a one-step or two-step problem. The AP test booklet gives you the equations to solve this directly as a two-step problem. This method will be followed here. The two equations may be combined to produce an equation that will allow you to do the problem in one step.

Using c = λν:

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Using ΔE = :

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Give yourself 1 point for each of these answers. If you did the problem as a one-step problem, give yourself 2 points if you got the final answer correct or 1 point if you left out any of the conversions.

Total your points. There are 4 points possible. Subtract 1 point if any answer does not have the correct number of significant figures.

Image Rapid Review

• Know the regions of the electromagnetic spectrum.

• The frequency, ν, is defined as the number of waves that pass a point per second.

• The wavelength, λ, is the distance between two identical points on a wave.

• The energy of light is related to the frequency by E = .

• The product of the frequency and wavelength of light is the speed of light: c = νλ.

• An orbital or wave function is a quantum mechanical, mathematical description of the electron.

• If all electrons in an atom are in their lowest possible energy level, then the atom is said to be in its ground state.

• If any electrons in an atom are in a higher energy state, then the atom is said to be in an excited state.

• The energy of an atom is quantized, existing in only certain distinct energy states.

• Quantum numbers are numbers used in Schrödinger’s equation to describe the orbital size, shape, and orientation in space, and the spin of an electron.

• The principal quantum number, n, describes the size of the orbital. It must be a positive integer. It is sometimes referred to as the atom’s shell.

• The angular momentum quantum number, l, defines the shape of the electron cloud. If l = 0, it is an s orbital; if l = 1, it is a p orbital; if l = 2, it is a d orbital; if l = 3, it is an f orbital, etc.

• The magnetic quantum number, ml, describes the orientation of the orbital around the nucleus. It can be integer values ranging from −l through 0 to +l.

• The spin quantum number, ms, describes the spin of the electron and can only have values of +½ and −½.

• Be able to write the quantum numbers associated with the first 20 electrons.