Given
Volume of Base. BOH = 40 mL
Normality of HCl solution = 0.1 N
Volume of HCl added
V1 = 5 mL
Volume of HCl added
V2 = 20 mL
pH1 = 10.04
pH2 = 9.14
W e have to find the dissociation constant of base,
Kb Let the initial millimoles of base be a
Reaction can be shown as:
Case I
On adding 5 mL acid:
pH = 10.04
Thus. pOH = 14 - 10.04
= 3.96
pOH is related with
Kb as :
pOH = - log
Kb + log
pOH = - log
Kb + log
... (ii)
where, [BCI] = Concentration of salt
[BOH] = Concentration of base
On substitution all the values in equation (j), we get
3.95 = - log
Kb + log
... (ii)
Case II
On adding 20 mL add:
pH - 9.14
Poh = 14 - 9.14
= 4.86
On substituting all the values in equation (I), we get
4.86 = - log
Kb + log
() ... (iii)
Subtracting equation (iii) from (ii) , we get
3.96 = - log
Kb + log
() 4.86 = - log
Kb + log
() ─────────────────────
- 0.9 = log
() - log
() As, log a - log b = log
Thus, - 0.9 = log
[] - 0.9 = log
[] - 0.9 = log
[] =
10−(0.9) = 0.126
(a - 2) = 0.126 (4a - 2)
(a - 2) = 0.504a - 0.252
a - 0.504a = 2 - 0.252
0.496 a = 1.748
1.748
a =
a = 3.52
On submitting the values of 'a' in equation (ii) we get
3.96 = - log
Kb + log
[] 3.96 = - log
Kb + log
() 3.96 = - log
Kb + log 0.165
3.96 = - log
Kb + (- 0.78)
3.96 + 0.78 = - log
Kb - log
Kb = 4.74
Kb =
10−(4.74) Kb = 0.000018197
Kb = 1.8 ×
10−5 Hence, option 'C' is correct.