The answer is D. 3.15 × 10−4
Now the dissolution of methylamine can be represented as follows:
CH3NH2 + H2O → CH3NH3OH
The product formed dissociates and it is represented as given below
CH3NH3OH ↔ CH3CH3+ + OH-
Now pH = 11.4 ,
Then pOH = 2.6
[OH-] = 10^-2.6
[OH-] = 2.51*10^-3
Considering the below equation again
CH3NH3OH ↔ CH3CH3+ + OH-
We can calculate Kb = [CH3NH3] [ OH-] / [CH3NH3OH]
where Kb is the equilibrium constant.
Now [CH3NH3] = [OH-] = 2.51 × 10^-3
and [CH3NH3OH] = 0.020M (given)
Substituting these values we get
Kb = ( 2.51 × 10^-3)² / 0.02
Kb = 6.31 × 10^-6 / 0.02
Kb = 3.15 × 10^-4
