In: Chemistry
The pKb values for the dibasic base B are pKb1 = 2.10 and pKb2 = 7.79.
Calculate the pH at each of the following points in the titration of 50.0 mL of a 0.55 M B(aq) with 0.55 M HCl(aq).
(a) before addition of any HCl
(b) after addition of 25.0 mL of HCl
(c) after addition of 50.0 mL of HCl
(d) after addition of 75.0 mL of HCl
(e) after addition of 100.0 mL of HCl
dibasic base = pKb1 = 2.10
pKb2 = 7.79
millimoles of base = 50 x 0.55 = 27.5
(a) before addition of any HCl
pOH = 1/2 [pKb1- logC]
pOH = 1/2 [pKb1 - log 0.55]
= 1/2 (2.10 - log 0.55)
= 1.18
pH + pOH = 14
pH = 14 - pOH
= 12.82
pH = 12.82
(b) after addition of 25.0 mL of HCl
millimoles of HCl = 25 x 0.55 = 13.75
it is half equivalence point. so
pOH = pKb1
pOH = 2.10
pH = 11.9
(c) after addition of 50.0 mL of HCl
millimoles of HCl = 27.5
it is equivalence point . at equivalence point
pOH = (pKb1 + pKb2 )/ 2
= 2.10 + 7.79 / 2
= 4.945
pH = 9.06
(d) after addition of 75.0 mL of HCl
moles of HCl = 75 x 0.55 = 41.25
it is second half equivalence point . so
pOH = pKb2
pOH = 7.79
pH = 6.21
(e) after addition of 100.0 mL of HCl
millimoles of HCl = 100 x 0.55 = 55
it is second equivalence point.here it is only BH2+ remains.so its concentration
BH2+ millimoles = 55
BH2+ concentration = 55 / total volume
= 55 / (100 + 50)
= 0.37 M
BH2+ + H2O ------------------> BH+ + H3O+
0.37 0 0
0.37 - x x x
Ka2 = x^2 / (0.37 -x)
6.17 x 10^-7 = x^2 / (0.37 -x)
x = 4.77 x 10^-4
[H3O+] = x = 4.77 x 10^-4M
pH = -log[H3O+] = -log (3.16 x 10^-4)
= 3.32
pH = 3.32