Given: Molar conductivity ratio ΛHZΛHQ=301, concentrations are CHQ=0.18M and CHZ=0.02M, and αQ=αZ with α≪1.
Find: pKa(HQ)−pKa(HZ).
For weak electrolytes,
Λm=αΛm∘
Given,
ΛHZΛHQ=301
Since αQ=αZ,
αΛHZ∘αΛHQ∘=301
So,
ΛHZ∘ΛHQ∘=301
Using Ostwald’s dilution law for weak acids,
Ka=1−αCα2≈Cα2
Because both acids have the same degree of dissociation, the ratio of dissociation constants becomes
Ka,HZKa,HQ=CHZCHQ=0.020.18=9
Now,
pKa=−logKa
Therefore,
pKa(HQ)−pKa(HZ)=−log(Ka,HZKa,HQ)=−log9
Its magnitude is approximately
log9≈1
Hence, the nearest integer asked in the solution is 1.