nE?2(0.771?0.337)??14.66 (3分) (3).lgK=
0.05920.0592K=4.57×10
2.设:NH3的平衡浓度为xmol·L(1分)
[Ag(NH3)2]=[Cl]=0.1 mol·L(1分)
+
--1-114
Ag(NH3)2]?[Cl?]0.1?0.1Kj=KSP×Kf=2×10×1×10=2×10=(6分) ?[NH3]2[NH3]2-10
7
-3
[NH3]=
0.01?5 (1分)
2?10?3cNH3?5?0.2?2.44(1分)
3.
H2SO4(g/L)?[26.15?(36.03?26.15)]?98.081000??1.596200050.00
(5分)
H3PO4(g/L)?c(NaOH)?V(NaOH)?M(H3PO4)??0.1000?(36.03?26.15)? ?1.936(5分)
1 100098.001000?100050.00
4. 解 依等温式得:
θθθ
△rHm=△rGm+ T△rSm=130.03103+2983160.0=177.7 (kJ2 mol-1) (4分)
??rHm177.7?103T???1111K(2分) ??rSm160.03
△rG°m(1500)= △rH°m-1500△rS°m=177.7310-15003160.0=-62300(kJ/ mol)(3分)
θθθ
lnKp=-△rGm/RT=62300÷(8.31431500)=5.0 (2分) Kp=1.61
θθ
p= p3 Kp=1.613105Pa (3分)
5. 解:将测定结果重排为10.11,10.52,10.54, 10.54,10.56,10.58,10.60,10.62 |10.11-10.52| Qji=?0.80 Qji>Q0.90 即 0.80>0.47, 10.11 舍去(3分)
10.62-10.11x??xni?10.52?10.54??10.54?10.56??10.58?10.60?1062?10.57(2分)
7 26
S???d2in?1
2?(?0.05)?(?0.03)2?(?0.03)2?(?0.01)2?(0.01)2?(0.03)2?(0.05)27?1?0.04(2分)
??x?ts1.94?0.04?10.57??10.57?0.03(3分) n7Al3++Y4-=AlY-
Zn2++Y4-=AlY2- (1分)
6. 解:反应为
w(Al)?w(Al)?
?c(EDTA)V(EDTA)?c(Zn(Ac))V(Zn(Ac)??M(Al)(3分)22m(Al)?0.05000?25.00?0.02000?21.50??27.00?100.2500?3
?8.9%(6分)7、解:H2O(L)=H2O(g) ΔHmθ=43.93kJ2mol-1
即:Qp=ΔrHmθ=43.93 kJ2mol-1(3分) 1mol水蒸发过程所做的体积功为 W=pΔV=ΔnRT=1mol×8.314×10-3KJ2mol-12K-1×298K=2.48kJ(4分) ΔU=Q-W=43.93-2.48=41.45kJ(3分)
8、解:设平衡时的总压为P
则P(Hg)=
21p总 P(O2)=p总 33??12则Kθ693=
[p(Hg)/P]?[p(O2)/P]
121?5.16?104?5.16?10413 =[32][]2 55100100 =0.344×0.4147
=0.140 (3分)
21?1.08?105?1.08?10513Kθ723=[3]?[]2 551010 =0.72×0.6
=0.432 (3分)
K2??H?T2?T1∴lg?=()
K12.303RTT12 27
lg0.432?H?0.140=
2.303?8.314(723?693723?693) 0.49=
?H?19.15(30501039)
0.49?19.156.0?10?5=ΔH=156.7kJ(4分)
9、解:2P2?~Cr2O2?2O2?2b7~3I2~6S3~3Pb3O4(3分)
1?0.1000?12.00?M(W(Pb3O4)=9Pb3O4)1000?M
S1?0.1000?12.00?685.6 =91000?0.1000
=0.9143(7分)
10、(1)mKMnO4=0.1320003158.035000=6.3(g)(3分) (2)c??1KMnO??=0.2000-1
54=0.1012mol.L(3分) ??134.02000?29.5090?278.0(3)FeSO427H2O%=
0.1012?35.10003100=99.80(4分)
1.01211、△-3
fGθm=△fHθm-T△rSθm=400.3-2983189.6310=344(kJ2mol-1
)因△fGθm>0,故在该条件下,反应不能自发进行。(4分)反应的△fHθm>0,升高温度有利于反应的进行(2分)
T?400.3189.6?10?3?2111(K)(4分)
12、A=-lgT=-lg0.398=0.400(3分)
c(Fe)?A1?1.1?104?0.4001?1.1?104?3.6?10?5(mol?L?1)(3分) 5Fe(g?L?1)?3.6?10??55.85?50.00?100.02.00?2.00?2.5(4分)
13、 解:甲基橙终点,反应为:HPO42- + H+ = H2PO4-
28
1分)
(
故, nNa2HPO4.12H2O=CHClVHCl (2分) Na2HPO4.12H2O%= ( CHClVHClM Na2HPO4.12H2O / 0.6000 )?100 %
= (0.1000314.00310-33358.1/ 0.600) 3100 % = 83.56 %. (2分)
酚酞终点,反应为:H2PO4- + OH- = HPO42- + H2O (1分) 故, nNaH2PO4.H2O=CNaOHVNaOH (2分) NaH2PO4.H2O % = ( CNaOHVOHM NaH2PO4.H2O/ 0.6000) ?100 ?
= (0.1200 35.00310-33160.0/ 0.6000) 3100 % = 16.00 % (2分)
14、解: N2(g) + 3H2(g ) = 2NH3(g)
θ
S m 298 (J.mol -1.k –1) 191.5 130.6 192.5
θ
ΔrSm298= 23192.5-191.5-33130.6= -198.3 (J.mol -1.k –1) (2分)
θθ
ΔrGm298= -RTlnKP 1 = -8.3143298 3ln 6.75 310 5 = -33239 (J.mol) (2分)
θθθ
ΔrGm298=ΔrHm298 -TΔrSm298, = -92.33 kJ.mol (2分) ln (k?P2 / k?P1 )=(?H298?/R).(T2-T1)/T1T2=( -92.333103/ 8.314 ) .(773-298) / 7733298 = -22.91 2分
θθ
KP2 =KP13 1.122310 –10 = 7.57310 –5 ( 2分)
15、 解: 2Cu2+ + 4I- = 2CuI + I2 , I2+2S2O32- =2I-+S4O62- (2分)
(
Cu2+ ∝ I2 ∝ 2 S2O32- (2分) n Cu2+ = CV (2分)
。
mCu2+ = n Cu2+ MCu = 0.1010?24.65MCu = 0.1010324.65363.55 = 158. 2 (mg)
(4分)
16、解:[OH]?Kb??[NH3?H2O] (3分) ?[NH4] ?1.8?10??50.1?1.8?10?5(mol/L) (2分) 0.1 pOH = 4.74 (1分)
p H = 14 – 4.74 = 9. 26 (1分)
[ Mg2+][OH]2 = 0.01 3(1.8310-5)2 = 3.24310-12 < 1. 2310-11 (2分)
-
无沉淀生成。 (1分)
17、解:(-)Cu |Cu2+ (1mol/L)‖Ag+ (1mol/l) | Ag (+) (2分) ε分)
Cu2+ + 4NH3 = [Cu (NH3)4]2+ (2分)
29
θ
= 0. 799 – 0. 34 = 0. 459 (V) (1
x 1 1 Kf?(2分)
ECu2?/Cu?ECu2?/Cu??1 x = 1/ Kf 4x?10.05921lg[Cu2?]?0.34?0.0296lg 24.8?1012 = - 0.04 (V) (2分)
ε = 0.799 – (- 0. 04 ) = 0. 803 (V) (1分)
18、解: 一升水中钙的含量 = 分)
一升水中镁的含量 = (3分)
CaO(mg/L) = 德国度 =
0.01000?12.62?40.08?1000?50.58(mg/L) (3
100.00.01000?(18.90?12.62)?24.31?1000?15.27(mg/L)
100.00.01000?18.90?56.08?1000?106.0(mg/L) (2分)
100.0106.0(mg/L) ?10.6? (2分)
10(mg/L)
30