An analytical chemist is titrating 159.0 mL of a 0.05700M solution of diethylamine ((C₂H₂)₂NH) with a ΝΗ 0.2000 M solution of HIO3. The pK, of diethylamine is 2.89. Calculate the pH of the base solution after the chemist has added 18.4 mL of the HIO3 solution to it. Note for advanced students: you may assume the final volume equals the initial volume of the solution plus the volume of HIO3 solution added. Round your answer to 2 decimal places. pH = 0 X

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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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An analytical chemist is titrating 159.0 mL of a 0.05700 M solution of diethylamine \((C_2H_5)_2NH\) with a 0.2000 M solution of HIO₃. The \(pK_b\) of diethylamine is 2.89. Calculate the pH of the base solution after the chemist has added 18.4 mL of the HIO₃ solution to it.

*Note for advanced students:* you may assume the final volume equals the initial volume of the solution plus the volume of HIO₃ solution added.

Round your answer to 2 decimal places.

pH = \[ \, \, \, \, \, \] 

[There are no graphs or diagrams to analyze.]
Transcribed Image Text:An analytical chemist is titrating 159.0 mL of a 0.05700 M solution of diethylamine \((C_2H_5)_2NH\) with a 0.2000 M solution of HIO₃. The \(pK_b\) of diethylamine is 2.89. Calculate the pH of the base solution after the chemist has added 18.4 mL of the HIO₃ solution to it. *Note for advanced students:* you may assume the final volume equals the initial volume of the solution plus the volume of HIO₃ solution added. Round your answer to 2 decimal places. pH = \[ \, \, \, \, \, \] [There are no graphs or diagrams to analyze.]
Expert Solution
Step 1

Given -

Volume of solution =159.0 mL 

Concentration of diethylamine =0.0570 0 M 

Concentration of HIO3= 0.2000M

pKb = 2.89 

Volume of HIO3= 18.4mL

 

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