题目
Chem 1C General Chemis... Self Assessment Quiz 16
单项选择题
Calculate the percent ionization of HCO2H in an aqueous solution containing 0.13 M formic acid, HCO2H(aq), and 0.11 M potassium formate, HCO2K(aq). For formic acid, Ka = 1.8 10–4.
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标准答案
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思路分析
First, I restate the problem to ensure clarity: we have formic acid, HCO2H, at 0.13 M and its conjugate base formate from potassium formate at 0.11 M in solution, with Ka = 1.8 × 10^-4. The task is to find the percent ionization of formic acid in this buffered mixture.
To analyze, recognize this is a weak acid (HA) with a significant amount of its conjugate base (A−) already present. The equilibrium is HA ⇌ H+ + A−......Login to view full explanation登录即可查看完整答案
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类似问题
Calculate the percent ionization of HCO2H in an aqueous solution containing 0.13 M formic acid, HCO2H(aq), and 0.11 M potassium formate, HCO2K(aq). For formic acid, Ka = 1.8 × 10–4.
Calculate the percent ionization of a 0.125 M aqueous HCN solution. For HCN, Ka = 4.9 10–10.
Consider two aqueous solutions of nitrous acid (HNO2, Ka = 4.6 × 10–4. Solution A has a concentration of [HNO2] = 0.55 M and solution B has a concentration of [HNO2] = 1.25 M. Which statement is true?
Calculate the percent ionization of a 0.125 M aqueous HCN solution. For HCN, Ka = 4.9 × 10–10.
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