=1.5614V
?rGθ= - n F Eθ=-2×9.65×104 ×1.5614 = -3.01 (kJ.mol-1)
(?rGθ= -2.303RTlg?=-3.01 kJ.mol-1)8.19 已知溴在碱性介质中的电势图为
BrO4-
?0.93V
BrO3-
0.565VBrO-
0.335VBr2
1.066VBr-
(2)判断哪些氧化态离子能歧化。
?解:(1)根据 ?n
??BrO?3?/Br?=
4?0.565?0.335?1.066=0.610V
4?1?1PH电势图,根据所绘的电势图说明下列反应随PH值的变化反应方向如何?
H3AsO4+2I-+2H+
解:查表可知?据????H3AsO3+I2+2H2O
in?H3AsO4/H3AsO3=0.56V, ? th?I2/I?H3AsO4/H3AsO3相应的电极电势为:0.6192V, 0.4416V, 0.3232V, 0.2048V, 0.086V. (pH,02468)
0.5008V, 0.4416V, 0.3524V, 0.3232V, 0.2640V, 0.2048V(pH,123456)
g at a time and A作?-pH图如下:
ll thin0.0592H3AsO4??H??lg?H3AsO3?2gs?eir8.20 计算电对H3AsO4/H3AsO3在不同PH值即为0、2、4、6、8时的电极电势,并绘出
-=0.5355V
72
hin be(2)根据?右〉?左可知,单质溴可以在碱性溶液中发生歧化反应。
?ing?,将pH各值分别代入公式,得出
2 arn??n2?2?n3?3???nn?1?n?1=11n1?n2?n3???nn?1????e g求:(1)电对BrO3-/Br-的标准电极电势;
ood for somethin当pH>,> ?I2/I? 〉
?H3AsO4/H3AsO3,?I2/I?
〈?H3AsO4/H3AsO3?I2/I? ?H3AsO4/H3AsO3?H3AsO4/H3AsO3=?H3AsO4/H3AsO3=?H3AsO4/H3AsO3答案:10(1.785V,1.791V,0.6539V,0.830V)11(9.7×10-7,Cu+易歧化)13(0.4303V)
g at a time and All things inhin their73
being are good for somethin
第七章 氧化还原习题及答案
