. Calculate the pH at each stage in the titration for the addition of 0.110 M HCL to 35.0 mL of 0.105 M NAOH. a. Initially b. after the addition of 5.00mL of acid c. after the addition of a further 5.00mL of acid (10.00mL total of acid)

Chemistry: Principles and Reactions
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Chapter14: Equilibria In Acid-base Solutions
Section: Chapter Questions
Problem 48QAP: A 0.2481 M solution of KOH is used to titrate 30.00 mL of 0.269 M hydrobromic acid. Assume that...
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2. Calculate the pH at each stage in the titration for the addition of 0.110 M HCL to 35.0 mL of 0.105 M NAOH.

a. Initially
b. after the addition of 5.00mL of acid

c. after the addition of a further 5.00mL of acid (10.00mL total of acid)
d. at the equivalence point.
e. after the addition of 5.00 of acid beyond the equivalence point.
f. after the addition of 10.0mL of acid beyond the equivalence point
g. on graph paper draw the curve of pH vs mL of acid. First plot, the points from a through f and then sketch the curve.

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