问题
选择题
已知0.02mol•L-1CH3COOH溶液和0.01mol•L-1NaOH溶液以等体积混和后溶液呈酸性,则该混合液中微粒浓度关系正确的( )
A.c (CH3COO-)>c (Na+)
B.c (Na+)+c (H+)=c (OH-)+c (CH3COOH)+c (CH3COO-)
C.c (CH3COOH)>c (CH3COO-)
D.c (CH3COOH)+c (CH3COO-)=0.02 mol•L-1
答案
A、0.02mol•L-1CH3COOH溶液和0.01mol•L-1NaOH溶液以等体积混和后,得到的是同浓度的CH3COOH和CH3COONa溶液,溶液中电荷守恒:c (Na+)+c (H+)=c (OH-)+c (CH3COO-);
c (H+)>c (OH-),得到(CH3COO-)>c (Na+),故A正确;
B、依据溶液中电荷守恒得到:c (Na+)+c (H+)=c (OH-)+c (CH3COO-);故B错误;
C、0.02mol•L-1CH3COOH溶液和0.01mol•L-1NaOH溶液以等体积混和后,得到的是同浓度的CH3COOH和CH3COONa溶液,溶液呈酸性说明醋酸电离大于醋酸根离子的水解程度,c (CH3COOH)<c (CH3COO-),故C错误;
D、依据溶液中物料守恒得到:c (CH3COOH)+c (CH3COO-)=0.01 mol•L-1;故D错误;
故选A.
