Question

The ionization constant of HF, HCOOH and HCN at 298K are 6.8 × 10^–4, 1.8 × 10^–4 and 4.8 × 10^–9 respectively. Calculate the ionization constants of the corresponding conjugate base.

Answer 1

It is known that,

`"K"_"b" = "K"_"w"/"K"_"a"`

Given,

K_a of HF = 6.8 × 10^–4

Hence, K_b of its conjugate base F^–

= `"K"_"w"/"K"_"a"`

`= 10^(-14)/(6.8 xx 10^(-4))`

`= 1.5 xx 10^(-11)`

Given,

K_a of HCOOH = 1.8 × 10^–4

Hence, K_b of its conjugate base HCOO^–

= `"K"_"w"/"K"_"a"`

`= 10^(-14)/(1.8 xx 10^(-4))`

`= 5.6 xx 10^(-11)`

Given

K_a of HCN = 4.8 × 10^–9

Hence , K_b of its conjugate base `"CN"^(-)`

`= "K"_"w"/"K"_("a")`

`= 10^(-14)/(4.8 xx 10^(-9))`

`= 2.08 xx 10^(-6)`