Lambdamo for NaCl, HCl and NaA are 126.4, 425.9 and 100.5 S cm2 mol-1 respectively. If the conductivity of 0.001 M HA is 5 × 10-5 S cm-1, degree of dissociation of HA is :

Question

Lambdamo for NaCl, HCl and NaA are 126.4, 425.9 and 100.5 S cm2 mol-1 respectively. If the conductivity of 0.001 M HA is 5 × 10-5 S cm-1, degree of dissociation of HA is : (A) 0.75 (B) 0.125 (C) 0.25 (D) 0.50

Tardigrade Admin · Accepted Answer

Lambdamo (HA) = Lambdamo (HCl) + Lambdamo (NaA) - Lambdamo (NaCl) = 425.9 + 100.5 - 126.4 = 400 S cm2 mol-1 Lambdam = (1000k/M) = (1000 × 5 × 10-5/10-3) =50 S cm2 mol-1 α = ( Lambdam/ Lambdamo) = (50/400) = 0.125

Q. Λmo​ for NaCl,HCl and NaA are 126.4,425.9 and 100.5Scm2mol−1 respectively. If the conductivity of 0.001MHA is 5×10−5Scm−1, degree of dissociation of HA is :

0.75

0.125

0.25

0.50

Λmo​(HA)=Λmo​(HCl)+Λmo​(NaA)−Λmo​(NaCl) = 425.9+100.5−126.4 = 400Scm2mol−1 Λm​=M1000k​=10−31000×5×10−5​=50Scm2mol−1 α=Λmo​Λm​​=40050​=0.125

Q. $Λ_{m}^{o}$ for $N a Cl, H Cl$ and $N a A$ are $126.4, 425.9$ and $100.5 S c m^{2} m o l^{- 1}$ respectively. If the conductivity of $0.001 M H A$ is $5 \times 1 0^{- 5} S c m^{- 1}$ , degree of dissociation of $H A$ is :