(4)AgBr(s) Ag(s)
1
Br2(l) -51.4 96.9 2
9.答案: (1) SnO2 =Sn +O2 (2) SnO2 +C =Sn + CO2 (3) SnO2 +2H2 =Sn +2H2O (g)
Sm(298.15K) 52.3 51.55 205.138 52.3 5.74 51.55 213.74 52.3 2×130.684 51.55 2×J.mol 1.K 1
188.825
fHm(298.15K)-580.7 0 0 -580.7 0 0 -393.509 -580.7 0 0 2×kJ.mol 1
(-241.818)
rSm(298.15K)
(1)204.388 (2)207.25 (3)115.532 1 1
J.mol.K
rHm(298.15K)
(1) 580.7 (2)187.191 (3)97.064 1
kJ.mol
rHm(298.15K) Tc> (1)2841K 903K (3)840K(温度最低,合适)
rSm(298.15K)
10.答案: C12H22O11(s)+12O2(g)=12CO2(g) +11H2O(l) rS m(298.15K)
Sm(298.15K) 360.2 205.138 213.74 69.91 =11×J.mol 1.K 1
69.91+12(213.74-205.138)-360.2=512.034
fHm(298.15K) -2225.5 0 -393.509 -285.83
kJ.mol 1
H.15K) -5640.738 rm(298
rGm(273.15 37K) -5640.738-310.15×(512.034÷1000)=-5799.54kJ.mol-1
( rGm(298.15K)=-5796.127 kJ.mol 温度对反应的标准吉布斯函数变有影响,但由于该反应的熵变相
-1
对于焓变小(绝对值),故变化不大)
做的非体积功= 5799.54kJ.mol×30%×3.8/342=19.33 kJ
11.答案: 查表 Sm(298.15K) 197.674 130.684 186.264 188.825 rS m(298.15K)=-214.637
J.mol 1.K 1kJ.mol 1
fHm(298.15K) -110.525 0 -74.81 -241.818
-1
r
Hm(298.15K) -206.103
rGm(523K) rHm(298.15K)-523K× rS m(298.15K)
=(-206.103)-523K×(-206.103÷1000)= -93.85 kJ.mol
rGm(523K) ( 93.85) 1000
lnK(523K) 21.58
R 523K8.314 523
-1
K e21,58 1021.58/2.303 109.37 2.35 109
12. 答案:设平衡时有2Xmol的SO2转化 2SO2(g)+O2(g)=2SO3(g)
起始 n/mol 8 4 0 n(始)=12mol