The neutralization of an acid with a base yields a salt and usually water in aqueous solution. Calculate the pH when 53.0 mL of 0.311 M hydrobromic acid is mixed with 53.0 mL of 0.311 M sodium hydroxide solution at 25 °C. pH = 7 Calculate the pH when 53.0 mL of 0.311 M of a monoprotic weak acid, HA, is mixed with 53.0 mL of 0.311 M sodium hydroxide solution at 25 °C. The Ka for HA is 7.7 × 10-5. pH =

Chemistry: Principles and Practice
3rd Edition
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Chapter16: Reactions Between Acids And Bases
Section: Chapter Questions
Problem 16.79QE
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The neutralization of an acid with a base yields a salt and usually water in aqueous solution.
Calculate the pH when 53.0 mL of 0.311 M hydrobromic acid is mixed with 53.0 mL of 0.311 M sodium hydroxide
solution at 25 °C.
pH =
7
Calculate the pH when 53.0 mL of 0.311 M of a monoprotic weak acid, HA, is mixed with 53.0 mL of 0.311 M sodium
hydroxide solution at 25 °C. The Ką for HA is 7.7 × 10-5.
pH =
Transcribed Image Text:The neutralization of an acid with a base yields a salt and usually water in aqueous solution. Calculate the pH when 53.0 mL of 0.311 M hydrobromic acid is mixed with 53.0 mL of 0.311 M sodium hydroxide solution at 25 °C. pH = 7 Calculate the pH when 53.0 mL of 0.311 M of a monoprotic weak acid, HA, is mixed with 53.0 mL of 0.311 M sodium hydroxide solution at 25 °C. The Ką for HA is 7.7 × 10-5. pH =
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