The degree of dissociation of a weak monoprotic acid of concentration 1.2 × 10- 3 M having Ka=1.0× 10- 4 is

Question

The degree of dissociation of a weak monoprotic acid of concentration 1.2 × 10- 3 M having Ka=1.0× 10- 4 is (A) 1% (B) 10% (C) 15% (D) 25%

Tardigrade Admin · Accepted Answer

By α =√(Ka/C)=√(1 0- 4/1.2 × 1 0- 3)=√(1/12) % α =28.86 % , as value of α is greater than 5 % so we can not take assumptions and will have to use the exact formula. So α will be given by: α =(- 1 0- 4 + √1 0- 8 + 4 × 1 0- 3 × 1.2 × 1 0- 4/2 × 1.2 × 1 0- 3) So the correct value of α =25 %

Q. The degree of dissociation of a weak monoprotic acid of concentration 1.2×10−3M having Ka​=1.0×10−4 is

1%

10%

15%

25%

By α=CKa​​​=1.2×10−310−4​​=121​​ %α=28.86% , as value of α is greater than 5% so we can not take assumptions and will have to use the exact formula. So α will be given by: α=2×1.2×10−3−10−4+10−8+4×10−3×1.2×10−4​​ So the correct value of α=25%

Q. The degree of dissociation of a weak monoprotic acid of concentration $1.2 \times 1 0^{- 3} M$ having $K_{a} = 1.0 \times 1 0^{- 4}$ is