Question

A 52.0 mL volume of 0.35 M CH3COOH (Ka = 1.8*10^-5) is titrated with 0.40 M NaOH. Calculate the pH after the addition of 23.0 mL of NaOH.

Answer 1

Initial moles of CH₃COOH present in 52.0 mL of 0.35 M is :

      52.0 mL * ( 1 L / 1000 mL ) * 0.35 M = 0.018 mol

Initial  moles of NaOH present in 23.0 mL of 0.40 M is :

      23.0 mL * ( 1 L / 1000 mL ) * 0.40 M = 9.2*10^-3 mol

       CH₃COOH   + NaOH -------> CH₃COONa   + H₂O

I(mol)   0.018           9.2*10^-3                              0                 -

C(mol  - 9.2*10^-3    -9.2*10^-3                      +9.2*10^-3    

           -----------------------------------------------------------

E(mol) 8.8*10^-3                0                          9.2*10^-3

           CH₃COOH   -------> CH₃COO^-   + H⁺

Moles:     8.8*10^-3                       9.2*10^-3     

                   K_a  = [CH₃COO^- ] [ H⁺] / [CH₃COOH ]

                [ H⁺] = K_a  [CH₃COOH ] / [CH₃COO^- ]

                          = (1.8*10^-5 ) (8.8*10^-3  ) / (9.2*10^-3  )

                          = 1.7*10^-5

       pH = -log[H⁺] = 4.77