7. solutions of electrolytesramu/chem311/assigned/chap07_probs_4e.pdf · using the model suggested...
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7. SOLUTIONS OF ELECTROLYTES
n Faraday’s Laws, Molar Conductivity, and Weak Electrolytes
7.1. 96 500 C deposits (63.5/2) g of copper; the quantity passed is therefore
96 500 × 0.04 × 263.5 C
The current was passed for 3600 s; the current is therefore
96 500 × 0.04 × 263.5 × 3600
A = 0.03377 A = 33.8 mA
7.2. Quantity of electricity passed =96 500 × 0.007 19
107.9 C
Current =96 500 × 0.007 19107.9 × 45 × 60
A = 2.38 × 10–3 A = 2.38 mA ≅ 2.4 mA
7.3. The chemical reactions involved are
C6H5OH + Br2(g) → C6H4(Br)OH + HBr
2Br– → Br2(g) + 2e–
2K+ + 2e– → 2K(s)
Two moles of electrons are involved in the generation of each mole of bromine gas, which reactswith one mole of phenol. Each batch consists of 500.0 kg (5.00 × 105 g) or 5313 moles of phenol(molecular weight = 94.114 g mol−1), which requires 5313 mol. of bromine, or 10 626 mol. ofelectrons for the reaction. Therefore, since It = nF, where n is the number of moles of electronsexchanged in the reaction, we get
t = 2 × 5313 mol × 96 485 C mol−1
20 000 C s−1 × 1 h
3600 s = 14.3 h.
SOLUTIONS OF ELECTROLYTES n 137
7.4. c/10–4M ΛΩ–1 cm2 mol–1
α 1 – α K = cα2/(1 – α)10–3 M
625 53.1 .147 .853 1.583
312.5 72.4 .200 .800 1.563
156.3 96.8 .267 .733 1.520
78.1 127.7 .353 .647 1.504
39.1 1.64 .453 .547 1.467
19.6 205.8 .569 .431 1.472
9.8 249.2 .688 .312 1.487
The values are reasonably constant; average K = 1.51 × 10–3 mol dm–3.
7.5. ΛAgCl = 61.9 + 76.4 = 138.3 Ω–1 cm2 mol–1
Solubility = 1.26 × 10–6
138.3 mol cm–3
= 9.11 × 10–9 mol cm–3
= 9.11 × 10–6 mol dm–3 = 9.11 µM
7.6. The increase in conductivity, 4.4 × 10–4 Ω–1 cm–1, is due to the CaSO4 present; thus
Λ
1
2Ca2+ + 12SO
24–
= 4.4 × 10–4 Ω–1 cm–1
2c
where c is the concentration of CaSO4; 2c is the concentration of 12CaSO4. The value of
λ
1
2SO24–
is obtained from the conductivity of the Na2SO4 solution:
Λ
Na+ +
12SO
24–
= 2.6 × 10–4 Ω–1 cm–1
2.0 × 10–6 mol cm–3
(Note that since the concentration of Na2SO4 is 0.001 M, that of 12 Na2SO4 is 0.002 M.) Thus
Λ
Na+ +
12SO
24–
= 130.0 Ω–1 cm2 mol–1
Thus, since
λ(Na+) = 50.1 Ω–1 cm2 mol–1
λ
1
2SO24–
= 79.9 Ω–1 cm2 mol–1
Then
Λ
1
2Ca2+ + 12SO
24–
= 139.4 Ω–1 cm2 mol–1
138 n CHAPTER 7
and
c = 4.4 × 10–4 Ω–1 cm–1
2 × 139.4 Ω–1 cm2 mol–1 = 1.578 × 10–3 mol dm–3
Thus
cCa2+ = 1.578 × 10–3 mol dm–3
cSO24
– = (1.0 × 10–3 + 1.578 × 10–3) mol dm–3
= 2.578 × 10–3 mol dm–3
Ksp = 4.07 × 10–6 mol2 dm–6
7.7. From Eq. (7.9) we have Λ = κ/c; therefore the electrolytic conductance κ is
κ = Λc = 128.96 S cm2 mol–1 × 0.10 × 10–3 mol cm–3
= 1.2896 × 10–2 S cm–1.
Now, using Eq. (7.8), the cell constant is
l/A = κ /G = 1.2896 × 10–2 S cm–1
0.01178 S = 1.0947 cm–1.
To find the equivalent conductance of the electrolyte, we use
Λ = G(l/A)
c = 1.0947 cm–1 × 0.00824 S
0.01178 S
= 180 S cm2 mol–1.
7.8. Λ(KCl) = (73.5 + 76.4) Ω–1 cm2 mol–1
The electrolytic conductivity at 0.01 M is
κ(KCl) = 149.9 Ω–1 cm2 mol–1 × 10–5 mol cm–3
= 1.50 × 10–3 Ω–1 cm–1
Recall that conductance is inversely proportional to the resistance. The electrolytic conductivity ofthe ammonia solution is thus
κ(NH4OH) = 1.50 × 10–3 × 1892460 = 1.15 × 10–4 Ω–1 cm–1
The molar conductivity of NH+4 + OH– is
Λ(NH+4 + OH–) = (73.4 + 198.6) Ω–1 cm2 mol–1
If c = [NH+4 ] = [OH–],
272.0 Ω–1 cm2 mol–1 = 1.15 × 10–4 Ω–1 cm–1
c
c = 4.23 × 10–7 mol cm–3 = 4.23 × 10–4 mol dm–3
SOLUTIONS OF ELECTROLYTES n 139
The concentrations of NH4OH, NH+4 , and OH– are thus
NH4OH →← NH+4 + OH–
0.01 – 4.23 × 10–4 4.23 × 10–4 4.23 × 10–4 mol dm–3
Kb = 1.87 × 10–5 mol dm–3
7.9. From the conductivity and concentration, we get
Λ = 1.53 × 10–4 S cm–1
0.0312 × 10–3 mol cm–3 = 4.90 S cm2 mol–1.
For the weak base, we write
B + H2O → BH+ + OH−
c(1–α) αc αc
so that
Kb = [BH+][OH−]
[B] = α2c
(1– α) .
Since α = Λ/Λ° = 2.07 × 10–2, from which with c = 0.0312 mol dm–3, we calculate
Kb = (2.07 × 10–2)2 × 0.0312 mol dm–3
(1– 2.07 × 10–2) = 1.37 × 10–5 mol dm–3.
7.10. Note that each number in the first row (concentrations) must be multiplied by 10–3 M to yield themolar concentration. Using the model suggested by the Debye-Huckel Onsager equation (Equation7.53), we assign equivalent conductance as the dependent variable and c as the independentvariable. The result of the linear regression is
Λ = 151.41 – 83.303c .
In the limit as c → 0, we have Λ° = 151.41 S cm2 mol–1.
7.11. Equation 7.20 can be rearranged to
cΛ2 = KΛ20 – KΛ0Λ
cΛ2 could therefore be plotted against Λ. Alternatively, since
cΛ = KΛ20 •
1Λ – KΛ0
cΛ can be plotted against 1/Λ. The slope and intercepts are as shown below:
140 n CHAPTER 7
0
–KΛ0
1/Λ0
1/Λ
Slope = KΛ0
cΛ
2
Λ values are obtained by the use of Eq. 7.9; for the lowest concentration,1.566 × 10–4 mol dm–3,
Λ = 1.788 × 10–6 Ω–1 cm–1 × 1000 dm–3 cm–3
1.566 × 10–4 mol dm–3
= 11.4 Ω–1 cm2 mol–1
Similarly, for the other concentrations:
c/10–4 mol dm–3 1.566 2.600 6.219 10.441
Λ/Ω–1 cm2 mol–1 11.4 9.30 6.45 5.11
cΛ/10–6 Ω–1 cm–1 mol–1 1.785 2.418 4.011 5.335
1/(Λ/Ω–1 cm2 mol–1) 0.0877 0.1075 0.155 0.196
In a plot of cΛ against 1/Λ, the intercepts are
–KΛ0 = –1.15 × 10–6 Ω–1 cm–1 mol–1
1/Λ0 = 0.035 Ω–1 cm2 mol–1; Λ0 = 30 Ω–1 cm2 mol–1
K = 4.0 × 10–8 mol cm–3 = 4.0 × 10–5 mol dm–3
7.12. The concentration of the acid in water = 1500 ppm = 1500 g acid
106 g solution
= 1.500 g acid
103 g solution =
1.500 g acid/60.05 g mol–1
1.00 kg solution
= 0.0250 m.
Since the solution has the same density as water, 1.00 kg of solution has a volume of 1.0 dm3. Inother words, we may assume the solution to have a concentration of 0.0250 M.
Now, for a weak acid whose degree of dissociation is α and the concentration is c M, Eq. (7.18)gives
Ka = α2c
(1– α) , or α2c + Ka α – Ka = 0.
Solving this equation for the degree of dissociation α with c = 0.0250 M gives α = 2.6548 ×10–2
(the other solution is negative). Since α = Λ/Λ°, we have
Λ = αΛ° = 2.6548 ×10–2 × 390.7 S cm2 mol–1 = 10.372 S cm2 mol–1.
SOLUTIONS OF ELECTROLYTES n 141
Therefore, the conductance measured by the cell cannot exceed
Λc = 10.372 S cm2 mol–1 × 0.0250 × 10–3 mol cm–3
= 2.59 ×10–4 S cm–1.
7.13. The Λ° value for H2O is calculated as
Λ°(HCl) – Λ°(KCl) + Λ°(KOH) = 550.6 S cm2 mol–1.
In pure water, the only species conducting electricity are H+ and OH– ions, each of which have
concentrations of 1.008 × 10–14 = 1.004 × 10–7 mol dm–3. Since this is a very low concentration,
we may assume that Λ ≈ Λ°. Therefore,
κ = Λc = 1.004 × 10–10 mol cm–3 × 550.6 S cm2 mol–1
= 5.528 × 10–8 S cm–1.
n Debye-Hückel Theory and Transport of Electrolytes
7.14. From Eq. 7.50,
Thickness ∝ c–1/2
Thickness ∝ ε1/2
Therefore,
a. At 0.0001 M, thickness = 0.964 × 1000 = 30.5 nm
b. At ε = 38, thickness = 0.964 × 3878 = 0.673 nm
7.15. Λ1/2Na2SO4 = ΛNaCl + Λ1/2K2SO4 – ΛKCl
= 126.5 + 153.3 – 149.9 = 129.9 Ω–1 cm2 mol–1
7.16. Λ°NH4OH = Λ°NH4Cl – λ°Cl– + λ°OH–
= 129.8 – 65.6 + 174.0 = 238.2 cm2 Ω–1 mol–1
α = 9.6
238.2 = 0.0403
142 n CHAPTER 7
7.17. a. Quantity of electricity = 2 h × 3600 s h–1 × 0.79 A
= 5688 C
Amount deposited = 5688/96 465 = 0.05895 mol
Loss of LiCl in anode compartment = 0.793 g
42.39 g mol–1
= 0.01871 mol
Anode reaction: Cl– → 12 Cl2 + e–
0.05895 mol Cl– is removed by electrolysis.
Net loss = 0.01871 mol Cl– = 0.05895 – 0.01871 = 0.04024 mol Cl– have migrated into theanode compartment.
tCl– = 0.040240.05895 = 0.683
tLi+ = 1 – 0.683 = 0.317
b. λ°Li+ = 0.317 × 115.0 = 36.5 Ω–1 cm2 mol–1
λ°Cl– = 78.5 Ω–1 cm2 mol–1
Then, from Eq. 7.64,
u+ = 36.5/96 485 = 3.78 × 10–4 cm2 V–1 s–1
u– = 78.5/96 485 = 8.14 × 10–4 cm2 V–1 s–1
7.18. Molecular weight of CdI2 = 366.21
96 500 C deposits 12 mol Cd2+ = 56.205 g of Cd2+
∴ current passed is 0.034 62 × 96 485
56.205 = 59.43 C
Anode compartment (152.64 g) originally contained
7.545 × 10–3 × 152.641000 = 1.1517 × 10–3 mol
It finally contains
0.3718366.21 = 1.0153 × 10–3 mol
SOLUTIONS OF ELECTROLYTES n 143
Loss in anode compartment = 1.364 × 10–4 mol
96 500 C would have brought about a loss of
1.364 × 10–4 × 96 48559.43 = 0.2214 mol of CuI2
= 0.4428 mol of 12 CuI2
∴ t+ = 0.4428; t– = 0.5572
7.19. The individual ionic conductivities are
λ+ = 0.821 × 426.16 = 349.9 Ω–1 cm2 mol–1
λ− = 0.179 × 426.16 = 76.3 Ω–1 cm2 mol–1
Then, by Eq. 7.64, the ionic mobilities are
u+ = 349.9 Ω–1 cm2 mol–1
96 485 C = 3.63 × 10–3 cm2 V–1 s–1
u– = 76.3 Ω–1 cm2 mol–1
96 485 C = 7.91 × 10–4 cm2 V–1 s–1
7.20. The ionic mobilities are (Eq. 7.64)
u+ = 50.1 Ω–1 cm2 mol–1
96 485 C = 5.19 × 10–4 cm2 V–1 s–1
u– = 76.4 Ω–1 cm2 mol–1
96 485 C mol–1 = 7.92 × 10–4 cm2 V–1 s–1
The velocities in a gradient of 100 V cm–1 are thus
Na+: 5.19 × 10–2 cm s–1
Cl–: 7.92 × 10–2 cm s–1
7.21. The molar conductivity of LiCl is
Λ = (38.6 + 76.4) Ω–1 cm2 mol–1
The specific conductivity of a 0.01 M solution is this quantity multiplied by 10–4 mol cm–3:
κ = 115.0 × 10–5 Ω–1 cm–1
The resistance of a l-cm length of tube is thus
R = 1 cm/5 cm2
115.0 × 10–5 Ω–1 cm–1 = 173.9 Ω
The potential required to produce a current of 1 A is
173.9 Ω × 1 A = 173.9 V
The potential gradient is thus 173.9 V cm–1.
144 n CHAPTER 7
The mobilities of the ions are (Eq. 7.64)
Li+:38.6 Ω–1 cm2 mol–1
96 485 C mol–1 = 4.00 × 10–4 cm2 V–1 s–1
Cl–:76.4 Ω–1 cm2 mol–1
96 485 C mol–1 = 7.92 × 10–4 cm2 V–1 s–1
The velocities are
Li+: 0.070 cm s–1; Cl–: 0.138 cm s–1
7.22. The work is given by dw = Fdr, where the force of attraction is
F = – Q1Q2/r2
Therefore
w = ∫∞
r1 –
Q1Q2
4πε0r2 dr = Q1Q2
4πε0
1
∞ – 1r1
a. ε0 = 8.854 × 10–12 C2 J–1 m–1; r1 = 10–9 m
w = – (1.6 × 10–19 C)2
4π8.85 × 10–12 C2 J–1 m–1
–1
10–9 m
= 2.30 × 10–19 J
b. w = –2.30 × 10–28 (1/∞ – 1/10–3 m)
= 2.30 × 10–25 J
c. w = –2.30 × 10–28 (1/0.10 m – 1/10–9 m)
= –2.30 × 10–28 (10 – 109) = 2.30 × 10–19 J
7.23. The exponential is shown as curve a, 4πr2 as curve b, and their product as curve c in theaccompanying diagram. With zc = 1 and zi = –1, the function to be differentiated is
f = ee2/4πε0εrkBT 4pr2
Differentiation gives
dfdr = 8πr ee2/4πε0εrkBT – 4πr2 •
e2
4πε0εr2kBT ee2/4πε0εrkBT
Setting this equal to zero leads to
r* = e2
8πε0εkBT
SOLUTIONS OF ELECTROLYTES n 145
40
(a)
(a) ee2/4πεO
εrkB
T
(b) 4πr2 × 1018
(b)
30
a b
20
10
00 0.2 0.4
r/nm
0.6 0.8
2
4
6
8
10
45(c) ee2/4πε
Oεrk
BT 4πr2 × 1018
35
c25
15
5
0 0.2 0.4
r/nm
0.6 0.8
(c)
The value of this at 25.0°C, with ε = 78.3, is
3.58 × 10–10 m = 0.358 nm
With zc = 1, the potential energy for two univalent ions, from Eq. 7.47, is
Ep = e2
4πε0εr
Introduction of the expression for r* gives
Ep = 2kBT
At 25.0 °C, Ep = 8.23 × 10–21 J = 4.96 kJ mol–1
n Thermodynamics of Ions
7.24. NaCl: –239.7 – 167.4 = –407.1 kJ mol–1
CaCl2: –543.1 – 334.8 = –877.9 kJ mol–1
ZnBr2: –152.3 – (2 × 120.9) = –394.1 kJ mol–1
146 n CHAPTER 7
7.25. H+: –1051.4 kJ mol–1
Na+: 679.1 – 1051.4 = –372.3 kJ mol–1
Mg2+: 274.1 – (2 × 1051.4) = –1828.7 kJ mol–1
Al3+: –1346.4 – (3 × 1051.4) = –4500.6 kJ mol–1
Cl–: –1407.1 + 1051.4 = –355.7 kJ mol–1
Br–: –1393.3 + 1051.4 = –341.9 kJ mol–1
7.26. KNO3: I = 12(0.1 × 12 + 0.1 × 12) = 0.1 M
K2SO4: I = 12(0.2 × 12 + 0.1 × 22) = 0.3 M
ZnSO4: I = 12(0.1 × 22 + 0.1 × 22) = 0.4 M
ZnCl2: I = 12(0.1 × 22 + 0.2 × 12) = 0.3 M
K4Fe(CN)6: I = 12(0.4 × 12 + 0.1 × 44) = 1.0 M
7.27. Ionic strength of solution.
I = 12(0.4 × 12 + 0.2 × 22) = 0.6 M
log10γ± = –z+ z– 0.51 I
= –2 × 2 × 0.51 0.6
= –2.04 × 0.775 = –1.58
γ± = 0.026
7.28. a. s = 1.274 × 10–5 M
log10γ± = –0.51 × (1.274 × 10–5)1/2
= –1.82 × 10–3
γ± = 0.996
Ks = γ2± s2 = (0.996 × 1.274 × 10–5)2
= 1.609 × 10–10
∆G° = –RT ln Ks
= –8.3145 × 298.15 ln 1.609 × 10–10
= 55.90 kJ mol–1
SOLUTIONS OF ELECTROLYTES n 147
b. I = 12(0.01 × 0.005 × 22) = 0.015 M
log10γ± = –0.51 0.015 = –0.0625
γ± = 0.866
s = Ks
1/2
γ± =
(1.609 × 10–10)1/2
0.866 = 1.46 × 10–5 M
7.29. log10γ± = –z+ z– 0.51 I
1 + a (0.33 × 1010) I
For a = 0 and z+ and z– = 1
log10γ± = –0.51 I I 0.01 0.10 0.50 1.0 1.5 2.0
log10γ± –0.051 –0.16 –0.36 –0.51 –0.62 –0.72
For a = 0.1
log10γ± = –0.51 I
1 + 0.33 I I 0.01 0.10 0.50 1.0 1.5 2.0
log10γ± –0.49 –0.15 –0.29 –0.38 –0.44 –0.49
For a = 0.2
log10γ± = –0.51 I
1 + 0.66 I I 0.01 0.10 0.50 1.0 1.5 2.0
log10γ± –0.48 –0.13 –0.24 –0.31 –0.35 –0.35
For a = 0.4
log10γ± = –0.51 I
1 + 1.32 I I 0.01 0.10 0.50 1.0 1.5 2.0
log10γ± –0.045 –0.11 –0.19 –0.22 –0.24 –0.25For a = 0.8
log10γ± = –0.51 I
1 + 2.64 I I 0.01 0.10 0.50 1.0 1.5 2.0
log10γ± –0.040 –0.088 –0.13 –0.14 –0.15 –0.15
148 n CHAPTER 7
0.00.2 0.4 0.6 0.8
√I
1.0 1.2 1.4
–0.10
–0.20
–0.30
–0.40log10γ±
–0.50
–0.60
–0.70
a = 0.8a = 0.4a = 0.2a = 0.1a = 0
nmnmnmnmnm
7.30. The electrostatic contribution to the Gibbs energy (Eq. 7.87) is, per mole of ions,
G°es =
z2e2L8πε0εr
= (1.602 × 10–19)2 × 6.022 × 1023
8π × 8.854 × 10–12 × 0.133 × 10–9 ε J mol–1
= 5.22 × 105
ε J mol–1
In the membrane,
G°es = 130.5 kJ mol–1
In water,
∆ G°es = 6.7 kJ mol–1
∆ G°es (water → membrane) = 124 kJ mol–1
7.31. Λ°
1
2CaF2 = 51.1 + 47.0 = 98.1 Ω–1 cm2 mol–1
Observed κ due to salt = 3.86 × 10–5 – 1.5 × 10–6
= 3.71 × 10–5 Ω–1 cm–1
SOLUTIONS OF ELECTROLYTES n 149
Solubility = 3.71 × 10–5
98.1 mol cm–3
= 3.782 × 10–4 mol dm–3
of
12CaF2
1 mol of 12 CaF2 has a mass of 20.04 + 19.00 = 39.04 g.
Solubility = 0.0148 g dm–3
Solubility product = [Ca2+][F–]2
= (0.5 × 3.782 × 10–4) × (3.782 × 10–4)2
= 2.70 × 10–11 mol3 dm–9
7.32. x M CuSO4: I = 12(22 + 22) x = 4x M
I = 0.1 M if x = 0.025
x M Ni(NO3)2: I = 12(22 + 2) x = 3x
I = 0.1 M if x = 0.033
x M Al2(SO4)3: I = 12(2 × 32 + 3 × 22) x = 15x M
I = 0.1 M if x = 0.006 67
x M Na3PO4: I = 12(3 + 32) x = 6x M
I = 0.1 M if x = 0.0167
7.33. a. First, neglect the effect of activity coefficients: if s is the solubility
s(2s)2 = 4.0 × 10–9 mol3 dm–9
s = 1.0 × 10–3 mol dm–3
The ionic strength is
12(1 × 22 + 2 × 1) 1.0 × 10–3 = 3.0 × 10–3 mol dm–3
By the Debye-Hückel limiting law
log10γ± = –0.51 × 2 × 3.0 × 10–3 = –0.0559
γ± = 0.88
If now the true solubility is s, the activities of the ions are
Pb2+: γ+s; F–: 2 γ–s
150 n CHAPTER 7
Then
(γ+s) (2γ–s)2 = 4.0 × 10–9 mol3 dm–3
γ+γ2– 4s3 = 4.0 × 10–9 mol3 dm–9
γ3± 4s3 = 4.0 × 10–9 mol3 dm–9 (from Eq. 7.105)
Thus
s3 = 4.0 × 10–9 mol3 dm–9
(0.88)3 × 4
s = 1.14 × 10–3 mol dm–3
We could proceed to further approximations as necessary.
b. In 0.01 M NaF, the ionic strength is essentially 0.01 mol dm–3 and
log10γ± = –2 × 0.51 × 0.01 = –0.102
γ± = 0.791
If s is the solubility,
s = [Pb2+]; [F–] = 0.01 mol dm–3
Then
sγ+ × (0.01 γ–)2 = 4.0 × 10–9 mol dm–3
γ+γ2– s × 0.0001 = 4.0 × 10–9 mol dm–3
γ3± s × 0.0001 = 4.0 × 10–9 mol dm–3
s = 4.0 × 10–9 mol dm–3
0.0001(0.791)3 = 8.08 × 10–5 mol dm–3
7.34. We proceed by successive approximations, first taking the activity coefficients to be unity. Then, ifs is the solubility,
s2 = 4.0 × 10–3 mol2 dm–6
s = 0.0632 mol dm–3
This is the ionic strength, thus
log10γ± = –0.51 0.0632 = –0.128
γ± = 0.744
To a second approximation,
γ2± s2 = (0.744)2s2 = 4.0 × 10–3 mol2 dm–6
s = 0.085 mol dm–3
SOLUTIONS OF ELECTROLYTES n 151
To a third approximation,
log10γ± = –0.51 0.085 ; γ± = 0.71
(0.71)2s2 = 4.0 × 10–3 mol2 dm–6
s = 0.089 mol dm–3
To a fourth approximation,
log10γ± = –0.51 0.089 ; γ± = 0.704
(0.704)2s2 = 4.0 × 10–3
s = 0.090 mol dm–3
7.35. For Problem 7.24 it was found that
G°es =
5.22 × 105
ε J mol–1
For the transfer from water (ε1) to lipid (ε2)
∆ G°es/J mol–1 = 5.22 × 105
1
ε2 –
1ε1
∆S°es = –
∂∆G
°es
∂T P
(from Eq. 3.119)
Since ε2 is temperature independent, this leads to
∆ S°es/J K–1 mol–1 = 5.22 × 105
∂∂T
1
ε1
= –5.22 × 105 1
ε21
∂ε ∂T
= –5.22 × 105 1ε1
• ∂ ln ε ∂T
= 5.22 × 105 × 0.0046
78 = 31 J K–1 mol–1
The entropy increases because of the release of bound water molecules when the K+ ions pass intothe lipid.
152 n CHAPTER 7
7.36. a. At infinite dilution the work of charging an ion is given directly by (Eq. 7.86):
wrev = z2e2
8πε0εr
For 1 mol of Na+
wrev = (1.602 × 10–19 C)2 6.022 × 1023 mol–1
8π × 8.854 × 10–12 C2 N–1 m–2 × 78 ×
195 × 10–12 m
= 9373 J mol–1
For 1 mol of Cl–,
wrev = 4920 J mol–1
For 1 mol of Na+Cl– at infinite dilution,
wrev = 14 293 J mol–1 = 14.3 kJ mol–1
b. These values are reduced when the electrolyte is at a higher concentration, the work ofcharging the ionic atmosphere being negative and equal to kT ln γi. Thus, for 1 mol of Na+
ions, of activity coefficient γ+, the work of charging the atmosphere is
RT ln γ+
Similarly for the chloride ion, the work per mole is
RT ln γ–
For 1 mol of Na+Cl–
wrev(atm) = RT(ln γ+ + ln γ–)
= RT ln γ+γ– = 2RT ln γ±
If γ± = 0.70
wrev(atm) = 2(8.3145 × 298.15 J mol–1) ln 0.70
= –1768 J mol–1
The net work of charging is thus
wrev = 14 293 – 1768 = 12 525 J mol–1
= 12.5 kJ mol–1
SOLUTIONS OF ELECTROLYTES n 153
7.37. The ionic strength of the solution is
I = 12 [0.1 + 0.1 + (0.2 × 4) + 0.4] = 0.70 M
The mean activity coefficient γ i of the barium and sulfate ions is given by
log10γi = –22 × 0.51 × 0.70
= –1.707
γi = 0.0196
If the solubility in the solution is s,
9.2 × 10–11 = s2 (0.0196)2
whence s = 4.88 × 10–4 M
7.38. The ionic strength of the solution is
I = 12[0.02 + (0.01 × 22)] = 0.03 M
By the DHLL,
log10γi = –0.51 × 0.03 = –0.0883
γi = 0.816
The solubility product is therefore
Ks = (1.561 × 10–5)2 × (0.816)2
= 1.623 × 10–10 M2
The solubility in pure water is thus
(1.623 × 10–10)1/2 = 1.27 × 10–5 M
7.39. The enthalpy change ∆Hneut for the neutralization of HCN by NaOH is less than the value
55.90 kJ mol–1 because of the energy required for the dissociation of HCN, ∆Hdiss,
∆Hneut = 55.90 kJ mol–1 – ∆Hdiss
Thus
∆Hdiss = 55.90 kJ mol–1 – ∆Hneut
= 55.90 – 12.13 = 43.77 kJ mol–1
154 n CHAPTER 7
7.40. I = 12(0.004 × 12 + 0.004 × 12 + 0.004 × 22) = 0.012
From Eq. 7.104,
log γi = –zi2 B I
for Na+
log γNa+ = –12 × 0.51 × 0.012 = –0.05587
γNa+ = 0.879
for SO24
–
log γSO24
– = –22 × 0.51 × 0.012 = –0.2235
γSO24
– = 0.598
From Eq. 7.111,
γ± = –0.51 z+ z– I
= –0.51 1 –2 0.012 = –0.1117
= 0.773
n Ionic Equilibria
7.41. Palmitate side Other side
Initial concentrations:
[Na+] = 0.1 M [Na+] = 0.2 M
[P–] = 0.1 M [Cl–] = 0.2 M
Final concentrations:
[Na+] = (0.1 + x)M [Na+] = (0.2 – x)M
[P–] = 0.1 M [Cl–] = (0.2 – x)M
[Cl–] = x M
SOLUTIONS OF ELECTROLYTES n 155
Then
(0.2 – x)2 = (0.1 + x)
0.04 – 0.4x + x2 = x2 + 0.1x
x = 0.040.5 = 0.08
Final concentrations are thus, on the palmitate side,
[Na+] = 0.18 M; [Cl–] = 0.08 M
On the other side,
[Na+] = [Cl–] = 0.12 M
7.42.[H2NCH2COOH] [H+]
[H3N+CH2COOH] = 1.5 × 10–10 M
[H3N+CH2COO–] [H+]
[H3N+CH2COOH] = 4.0 × 10–3
Dividing the first by the second gives
[H2NCH2COOH]
[H3N+CH2COO–] =
1.5 × 10–10
4.0 × 10–3 = 3.8 × 10–8
This is convincing evidence for the predominance of the zwitterion H3N+CH2COO–.
7.43. a. pH = 1; H3PO4 predominant
b. pH = 2.7; H2PO–4 predominant
c. pH = 4.3; H2PO–4 predominant
d. pH = 11.4; HPO24
– predominant
e. pH = 14; PO34
– predominant
7.44. Let the final concentrations be
Left-hand Compartment Right-hand Compartment
[K+]/M = 0.05 – x [K+]/M = 0.15 + x
[Cl–]/M = 0.05 – x [Cl–]/M = x
[P–]/M = 0.1
At equilibrium,
(0.05 – x)2 = x (0.15 + x)
whence x = 0.01
156 n CHAPTER 7
The final concentrations are therefore
Left-hand Compartment Right-hand Compartment
[K+] = 0.04 M [K+] = 0.16 M
[Cl–] = 0.04 M [Cl–] = 0.01 M
[P–] = 0.1 M
It is easy to check that the product [K+][Cl–] is the same on each side of the membrane.