题目内容
【题目】25℃,将O.4mol/L CH3COOH 溶液和 O.2mol/L NaOH 溶液各 1OOmL 混合后,pH=5,(设混合后溶液总体积为两溶液体积之和)
(1)混合溶液中离子浓度由大到小的顺序是
(2)①c(CH3COO﹣)+c(CH3COOH)=mol/L②c(CH3COO﹣)﹣c(CH3COOH)=mol/L.
【答案】
(1)c(CH3COO﹣)>c(Na+)>c(H+)>c(OH﹣)
(2)0.2;2×(10﹣5﹣10﹣9)
【解析】解:(1)O.4mol/L CH3COOH溶液和 O.2mol/LNaOH溶液各1OOmL混合后,生成等浓度的醋酸钠和醋酸溶液,溶液的pH=5,则溶液显示酸性,c(H+)>c(OH﹣),根据电荷守恒c(H+)+c(Na+)=c(CH3COO﹣)+c(OH﹣)可得:c(CH3COO﹣)>c(Na+),则溶液中各离子浓度大小为:c(CH3COO﹣)>c(Na+)>c(H+)>c(OH﹣),所以答案是:c(CH3COO﹣)>c(Na+)>c(H+)>c(OH﹣);(2)①根据物料守恒恒可得:2c(Na+)=c(CH3COO﹣)+c(CH3COOH)=0.4mol/L× 
=0.2mol/L,所以答案是:0.2;②溶液的pH=5,则溶液中氢离子浓度为:c(H+)=10﹣5mol/L,氢氧根离子浓度为:c(OH﹣)=10﹣9mol/L,根据电荷守恒可得:①c(H+)+c(Na+)=c(CH3COO﹣)+c(OH﹣),根据物料守恒可得:②2c(Na+)=c(CH3COO﹣)+c(CH3COOH),将②带入①×2可得:c(CH3COO﹣)﹣c(CH3COOH)=2c(H+)﹣2c(OH﹣)=2×(10﹣5﹣10﹣9 )mol/L, 所以答案是:2×(10﹣5﹣10﹣9 ).
