An analytical chemist is titrating 175.9 mL of a 0.1800M solution of methylamine (CH,NH,) with a 0.1200M solution of HNO,. The p K, of methylamine is 3.36. Calculate the pH of the base solution after the chemist has added 127.7 mL of the HNO, solution to it. Note for advanced students: you may assume the final volume equals the initial volume of the solution plus the volume of HNO, solution added. Round your answer to 2 decimal places. pH =

Principles of Modern Chemistry
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ISBN:9781305079113
Author:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
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Chapter15: Acid–base Equilibria
Section: Chapter Questions
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An analytical chemist is titrating 175.9 mL of a 0.1800M solution of methylamine (CH, NH,) with a 0.1200M solution of HNO,. The p K, of methylamine is
3.36. Calculate the pH of the base solution after the chemist has added 127.7 mL of the HNO, solution to it.
Note for advanced students: you may assume the final volume equals the initial volume of the solution plus the volume of HNO, solution added.
Round your answer to 2 decimal places.
pH = ]
%3D
Transcribed Image Text:An analytical chemist is titrating 175.9 mL of a 0.1800M solution of methylamine (CH, NH,) with a 0.1200M solution of HNO,. The p K, of methylamine is 3.36. Calculate the pH of the base solution after the chemist has added 127.7 mL of the HNO, solution to it. Note for advanced students: you may assume the final volume equals the initial volume of the solution plus the volume of HNO, solution added. Round your answer to 2 decimal places. pH = ] %3D
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