Answer:
[tex]1.038\times 10^{-5}[/tex] is dissociation constant and the value of [tex]pK_a[/tex] is 4.98.
Explanation:
The pH of the solution = 2.95 M
[tex]pH=-\log[H^+][/tex]
[tex]2.95=-\log[H^+][/tex]
[tex][H^+]=10^{-2.95}=0.001122 M[/tex]..[1]
Concentration of unknown monoprotic acid = C = 0.1224 M
[tex]HA\rightleftharpoons A^-+H^+[/tex]
Initially
C 0 0
At equilibrium
(C-x) x x
The expression of a dissociation reaction can be written as;
[tex]K_a=\frac{[A^-][H^+]}{[HA]}[/tex]
[tex]K_a=\frac{x^2}{(C-x)}[/tex]
[tex][H^+]=x =0.001122 M[/tex] ( from [1])
[tex]K_a=\frac{(0.001122 M)^2}{(0.1224 M-0.001122 M)}[/tex]
[tex]K_a=1.038\times 10^{-5}[/tex]
The value of [tex]pK_a[/tex] :
[tex]pK_a=-\log[K_a][/tex]
[tex]=-\log[1.038\times 10^{-5}]=4.98[/tex]
[tex]1.038\times 10^{-5}[/tex] is dissociation constant and the value of [tex]pK_a[/tex] is 4.98.
