Part A A beaker with 1.30×102 mL of an acetic acid buffer with a pH of 5.000 is sitting on a benchtop. The total molarity of acid and conjugate base in this buffer is 0.100 M. A student adds 5.20 mL of a 0.450 M HCI solution to the beaker. How much will the pH change? The PK, of acetic acid is 4.740. Express your answer numerically to two decimal places. Use a minus() sign if the pH has decreased.

Chemistry: The Molecular Science
5th Edition
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter15: Additional Aqueous Equilibria
Section: Chapter Questions
Problem 93QRT: When 40.00 mL of a weak monoprotic acid solution is titrated with 0.100-M NaOH, the equivalence...
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Part A
A beaker with 1.30x102 mL of an acetic acid buffer with a pH of 5.000 is sitting on a benchtop. The total molarity of acid and conjugate
base in this buffer is 0.100 M. A student adds 5.20 mL of a 0.450 M HCI solution to the beaker. How much will the pH change? The
PK, of acetic acid is 4.740.
Express your answer numerically to two decimal places. Use a minus (
) sign if the pH has decreased.
Transcribed Image Text:Part A A beaker with 1.30x102 mL of an acetic acid buffer with a pH of 5.000 is sitting on a benchtop. The total molarity of acid and conjugate base in this buffer is 0.100 M. A student adds 5.20 mL of a 0.450 M HCI solution to the beaker. How much will the pH change? The PK, of acetic acid is 4.740. Express your answer numerically to two decimal places. Use a minus ( ) sign if the pH has decreased.
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