2011-2012川大工物理化学试题A卷期末试题及解析 下载本文

?rGm??ZEF?71.796kJ?mol?1?rHm??ZEF?T?rSm?60.287kJ?mol3)

?1

E?E??0.059161lg2?(Ac?)2?(Cu2?)

E??E?0.02958lg[?(Ac?)2?(Cu2?)??0.3011V4)E?(Ac/AgAc/Ag)?E?(Cu2?/Cu)?E??0.6381V 5)

E?(Ac/AgAc/Ag)?E?(Ag?/Ag)?0.05916lgKspKsp?1.88?10?3

正极 :2AgAc(s)+2e->2Ag(s)+2Ac-.

负极: 2Ag(s)-2e->2Ag+.

电池反应:AgAc->Ac-+Ag+.

E??E正?E负?RTlnksp?0.6381?0.7994??0.1613F

?ksp?1.88?10?33. 解:1)+)AgCl(s)+e→Ag(s)+Cl- -)0.5H2(100kPa)-e→H+

电池 AgCI(s)+0.5H2(100kPa)=Ag(s)+HCI(b=0.50mol.kg1) 2) +)AgCl(s)+e→Ag(s)+Cl-…

-)Ag-e?Ag?

电池 AgCl(s)?Ag??Cl?

?E??E?(Cl?/AgCl/Ag)?E?(Ag?/Ag)?0.05916lgKsp E?(Cl?/AgCl/Ag)?E?(Ag?/Ag)?0.05916V1gKsp

=0.7994V+0.05916V1g1.75?1010

9

=07994V+0.05916V?(?9.757) =0.2222V

3)EMF??E?(Cl?/AgCI/Ag)?0.2222V

E=E??0.05916Iga(HCl) 得: 0.276V=0.2222V-0.05916Ig? a(HCl)=0.1232

a?(HCl)=a(HCl)0.5=0.351

??=a?/(b?/b?)?0.351/0.462?0.760

4. 解 单个分子在表面吸附层占据的面积为

As?1 L?2(HCl)

式中?2为溶质的表面吸附量。 稀溶液中吉布斯吸附公式为 ?2??联立上面两式得 c??cd?

RTdcRTd?

LAsdc由题给条件知 d???0.55dc即代入上式得: c?dc??1.818 d?8.314?2926.022?1023?0.5?10?9??2?1.818?0.0147mol?m?3

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