SOLUTION MANUAL Modern Physics withModern
n n n n n
n Computational Methods: for Scientists and Engineers
n n n n n
n 3rd Edition by Morrison Chapters 1- 15
n n n n n n
,Table of contents n n
1. The Wave-Particle Duality
n n n
2. The Schrödinger Wave Equation
n n n n
3. Operators and Waves
n n n
4. The Hydrogen Atom
n n n
5. Many-Electron Atoms
n n
6. The Emergence of Masers and Lasers
n n n n n n
7. Diatomic Molecules
n n
8. Statistical Physics
n n
9. Electronic Structure of Solids
n n n n
10. Charge Carriers in Semiconductors
n n n n
11. Semiconductor Lasers
n n
12. The Special Theory of Relativity
n n n n n
13. The Relativistic Wave Equations and General Relativity
n n n n n n n
14. Particle Physics
n n
15. Nuclear Physics
n n
,1
The Wave-Particle Duality - Solutions
n n n n
1. Theenergyof photonsinterms of the wavelength of lightis
n n n n n n n n n n n
given by Eq. (1.5). Following Example 1.1 and substituting λ =
n n n n n n n n n n n
200 eV gives:
n n n
hc 1240 eV · nm
= =6.2eV
n n n
Ephoton = λ 200 nm
n n
n
n
2. The energy of the beam each second is:
n n n n n n n
power 100 W
= =100J
n
Etotal = time 1s
n n
n
n
The number of photons comes from the total energy divided by the
n n n n n n n n n n n
energy of each photon (see Problem 1). The photon’s energy must
n n n n n n n n n n n
be converted to Joules using the constant 1.602 × 10−19 J/eV , see
n n n n n n n n n n n n n
Example 1.5. The result is:
n n n n n
N =Etotal = 100J =1.01×1020 n n n
photons E
n n n
pho
ton 9.93×10−19 n n
for the number of photons striking the surface each second.
n n n n n n n n n
3.We are given the power of the laser in milliwatts, where 1 mW
n n n n n n n n n n n n
= 10−3 W . The power may be expressed as: 1 W = 1 J/s. Following
n n n n n n n n n n n n n n n n
Example 1.1, the energy of a single photon is:
n n n n n n n n n
1240 eV · nm
hc =1.960 eV
n n n
Ephoton = 632.8 nm
n n
n
n n
=
λ
n
n
We now convert to SI units (see Example 1.5):
n n n n n n n n
1.960eV ×1.602×10−19J/eV =3.14×10−19 J n n n n n n n n n n n
Following the same procedure as Problem 2: n n n n n n
1×10−3J/s 15 photons n n n
Rate of emission = = 3.19× 10
n
3.14×10−19 J/photon s
n n n n n n n
n
n n n
, 2
4. The maximum kinetic energy of photoelectrons is found using
n n n n n n n n
n Eq. (1.6) and the work functions, W, of the metals are given in
n n n n n n n n n n n n
n Table 1.1. Following Problem 1, Ephoton = hc/λ = 6.20 eV . For part
n n n n n n n n n n n n n
n (a), Na has W = 2.28 eV :
n n n n n n n
(KE)max=6.20eV −2.28 eV =3.92 eV n n n n n n n n n
Similarly, for Al metal in part (b), W = 4.08 eV giving (KE)max = 2.12 eV n n n n n n n n n n n n n n n
andfor Ag metal in part (c), W =4.73 eV, giving (KE)max=1.47 eV.
n n n n n n n n n n n n n n n n n
5. This problem again concerns the photoelectric effect. As in
n n n n n n n n
n Problem 4, we use Eq. (1.6): n n n n n
hc−
(KE)max =
n
Wλ
n
n n
where W is the work function of the material and the term hc/λ
n n n n n n n n n n n n
describes the energy of the incoming photons. Solving for the latter:
n n n n n n n n n n n
hc
= (KE)max+W = 2.3 eV +0.9 eV = 3.2 eV
λ
n n n n n n n n n n n n
n
Solving Eq. (1.5) for the wavelength: n n n n n
1240 eV · nm
λ=
n n n
=387.5 nm
3.2
n
n n
eV n
6. A potential energy of 0.72 eV is needed to stop the flow of electrons.
n n n n n n n n n n n n n
Hence,
n
(KE)maxofthephotoelectronscanbenomorethan0.72eV.SolvingE
n n n n n n n n n n n n n
q.(1.6) for the work function:
n n n n n
hc 1240 eV · —0.72 eV = 1.98 eV
W= (KE)max
n n
λ nm
n n n n n
n n
=
n
n
460 nm n
7. Reversing the procedure from Problem 6, we start with Eq. (1.6): n n n n n n n n n n
hc 1240 eV ·
(KE)max = − W
n
—1.98 eV = 3.19 eV
n n
n
nm
n n n n n n
= n
n
λ
240 nm n
Hence, a stopping potential of 3.19 eV prohibits the electrons from
n n n n n n n n n n
reaching the anode.
n n n
8. Just at threshold, the kinetic energy of the electron is
n n n n n n n n n
n zero. Setting (KE)max = 0 in Eq. (1.6),
n n n n n n n
hc
W= = 1240 eV · =3.44 eV n n
λ0
n
nm
n n
n
360 nm n
9. A frequency of 1200 THz is equal to 1200×1012 Hz. Using Eq. (1.10),
n n n n n n n n n n n n n n
n n n n n
n Computational Methods: for Scientists and Engineers
n n n n n
n 3rd Edition by Morrison Chapters 1- 15
n n n n n n
,Table of contents n n
1. The Wave-Particle Duality
n n n
2. The Schrödinger Wave Equation
n n n n
3. Operators and Waves
n n n
4. The Hydrogen Atom
n n n
5. Many-Electron Atoms
n n
6. The Emergence of Masers and Lasers
n n n n n n
7. Diatomic Molecules
n n
8. Statistical Physics
n n
9. Electronic Structure of Solids
n n n n
10. Charge Carriers in Semiconductors
n n n n
11. Semiconductor Lasers
n n
12. The Special Theory of Relativity
n n n n n
13. The Relativistic Wave Equations and General Relativity
n n n n n n n
14. Particle Physics
n n
15. Nuclear Physics
n n
,1
The Wave-Particle Duality - Solutions
n n n n
1. Theenergyof photonsinterms of the wavelength of lightis
n n n n n n n n n n n
given by Eq. (1.5). Following Example 1.1 and substituting λ =
n n n n n n n n n n n
200 eV gives:
n n n
hc 1240 eV · nm
= =6.2eV
n n n
Ephoton = λ 200 nm
n n
n
n
2. The energy of the beam each second is:
n n n n n n n
power 100 W
= =100J
n
Etotal = time 1s
n n
n
n
The number of photons comes from the total energy divided by the
n n n n n n n n n n n
energy of each photon (see Problem 1). The photon’s energy must
n n n n n n n n n n n
be converted to Joules using the constant 1.602 × 10−19 J/eV , see
n n n n n n n n n n n n n
Example 1.5. The result is:
n n n n n
N =Etotal = 100J =1.01×1020 n n n
photons E
n n n
pho
ton 9.93×10−19 n n
for the number of photons striking the surface each second.
n n n n n n n n n
3.We are given the power of the laser in milliwatts, where 1 mW
n n n n n n n n n n n n
= 10−3 W . The power may be expressed as: 1 W = 1 J/s. Following
n n n n n n n n n n n n n n n n
Example 1.1, the energy of a single photon is:
n n n n n n n n n
1240 eV · nm
hc =1.960 eV
n n n
Ephoton = 632.8 nm
n n
n
n n
=
λ
n
n
We now convert to SI units (see Example 1.5):
n n n n n n n n
1.960eV ×1.602×10−19J/eV =3.14×10−19 J n n n n n n n n n n n
Following the same procedure as Problem 2: n n n n n n
1×10−3J/s 15 photons n n n
Rate of emission = = 3.19× 10
n
3.14×10−19 J/photon s
n n n n n n n
n
n n n
, 2
4. The maximum kinetic energy of photoelectrons is found using
n n n n n n n n
n Eq. (1.6) and the work functions, W, of the metals are given in
n n n n n n n n n n n n
n Table 1.1. Following Problem 1, Ephoton = hc/λ = 6.20 eV . For part
n n n n n n n n n n n n n
n (a), Na has W = 2.28 eV :
n n n n n n n
(KE)max=6.20eV −2.28 eV =3.92 eV n n n n n n n n n
Similarly, for Al metal in part (b), W = 4.08 eV giving (KE)max = 2.12 eV n n n n n n n n n n n n n n n
andfor Ag metal in part (c), W =4.73 eV, giving (KE)max=1.47 eV.
n n n n n n n n n n n n n n n n n
5. This problem again concerns the photoelectric effect. As in
n n n n n n n n
n Problem 4, we use Eq. (1.6): n n n n n
hc−
(KE)max =
n
Wλ
n
n n
where W is the work function of the material and the term hc/λ
n n n n n n n n n n n n
describes the energy of the incoming photons. Solving for the latter:
n n n n n n n n n n n
hc
= (KE)max+W = 2.3 eV +0.9 eV = 3.2 eV
λ
n n n n n n n n n n n n
n
Solving Eq. (1.5) for the wavelength: n n n n n
1240 eV · nm
λ=
n n n
=387.5 nm
3.2
n
n n
eV n
6. A potential energy of 0.72 eV is needed to stop the flow of electrons.
n n n n n n n n n n n n n
Hence,
n
(KE)maxofthephotoelectronscanbenomorethan0.72eV.SolvingE
n n n n n n n n n n n n n
q.(1.6) for the work function:
n n n n n
hc 1240 eV · —0.72 eV = 1.98 eV
W= (KE)max
n n
λ nm
n n n n n
n n
=
n
n
460 nm n
7. Reversing the procedure from Problem 6, we start with Eq. (1.6): n n n n n n n n n n
hc 1240 eV ·
(KE)max = − W
n
—1.98 eV = 3.19 eV
n n
n
nm
n n n n n n
= n
n
λ
240 nm n
Hence, a stopping potential of 3.19 eV prohibits the electrons from
n n n n n n n n n n
reaching the anode.
n n n
8. Just at threshold, the kinetic energy of the electron is
n n n n n n n n n
n zero. Setting (KE)max = 0 in Eq. (1.6),
n n n n n n n
hc
W= = 1240 eV · =3.44 eV n n
λ0
n
nm
n n
n
360 nm n
9. A frequency of 1200 THz is equal to 1200×1012 Hz. Using Eq. (1.10),
n n n n n n n n n n n n n n
