a) A 0.01M solution of ammonium chloride has a pH = 5.62 Calculate the basic ionization constant for ammonium b) A weak acid A-H is such that a 0.1M solution has a pH of 4.00. What will be the pH of a 0.1M Na-A solution? %3D

Fundamentals Of Analytical Chemistry
9th Edition
ISBN:9781285640686
Author:Skoog
Publisher:Skoog
Chapter15: Complex Acid/base Systems
Section: Chapter Questions
Problem 15.13QAP
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Please give complete answer with explanation and answer both of questions
Chemistry
a) A 0.01M solution of ammonium chloride has a pH = 5.62 Calculate the basic
ionization constant for ammonium
b) A weak acid A-H is such that a 0.1M solution has a pH of 4.00. What will be the
pH of a 0.1M Na-A solution?
%3D
Transcribed Image Text:Chemistry a) A 0.01M solution of ammonium chloride has a pH = 5.62 Calculate the basic ionization constant for ammonium b) A weak acid A-H is such that a 0.1M solution has a pH of 4.00. What will be the pH of a 0.1M Na-A solution? %3D
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