A chemist takes 8.579 mL of liquid acetic acid, CH₃COOH (molar mass: 60.052 g/mol) with 1.05 g/mL density and mix it with 12.305 g of solid sodium acetate, CH₃COONa (molar mass: 82.0343g/mol) and prepare an aqueous solution of 1.0 L by adding required amount of water. (Acidity constant of CH₃COOH is 1.8x10⁻⁵) a) What is the pH of such solution? b) What would the pH of the solution be if 0.020 mol NaOH added? c) What would the pH of the solution be if 0.15 mol NaOH added to the solution in a?

Chemistry: Principles and Practice
3rd Edition
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
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Chapter16: Reactions Between Acids And Bases
Section: Chapter Questions
Problem 16.87QE
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A chemist takes 8.579 mL of liquid acetic acid, CH₃COOH (molar mass: 60.052 g/mol) with 1.05 g/mL density and mix it with 12.305 g of solid sodium acetate, CH₃COONa (molar mass: 82.0343g/mol) and prepare an aqueous solution of 1.0 L by adding required amount of water. (Acidity constant of CH₃COOH is 1.8x10⁻⁵)

a) What is the pH of such solution?
b) What would the pH of the solution be if 0.020 mol NaOH added?
c) What would the pH of the solution be if 0.15 mol NaOH added to the solution in a?
d) What would the pH of the solution be if 0.17 mol NaOH added to the solution in a?

e) What would the pH of the solution be if 0.020 mol HCl added to the solution in a?

f) What would the pH of the solution be if 0.15 mol HCl added to the solution in a?
g) What would the pH of the solution be if 0.17 mol HCl added to the solution in a?

 

 

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