CHAP. 11: ELECTROCHEMISTRY [CONTENTS] 376
Equation (11.53) can then be written in the form
K=
α^2 c γ±^2
(1−α)γHA1
cst, (11.54)
wherecis the initial concentration of the acid.
Example
The dissociation degree of acetic acid of the concentrationc= 0.0025 mol dm−^3 isα= 0.0825.
Calculate the dissociation constant of the acid
a) given thatγHA=γ±= 1,
b) given thatγHA= 1 andγ±= 0.983, which is the estimate from relation (11.45).
c) Compare the two results.Solution
Substituting into relation (11.54) yields
a)K=0. 08252 × 0. 0025 × 12
(1− 0 .0825)× 1
= 1. 85 × 10 −^5 ,
b)K=0. 08252 × 0. 0025 × 0. 9832
(1− 0 .0825)× 1
= 1. 79 × 10 −^5.
c) If we neglect the effect of the activity coefficients, the error in the dissociation constant will
be about 3 per cent in this case.