Lambda m ° for NaCl , HCl and NaA are 126.4,425.9 and 100.5 S cm 2 mol -1, respectively. If the conductivity of 0.001 M HA is 5 × 10-5 S cm -1, percent degree of dissociation of HA is.

Question

Lambda m ° for NaCl , HCl and NaA are 126.4,425.9 and 100.5 S cm 2 mol -1, respectively. If the conductivity of 0.001 M HA is 5 × 10-5 S cm -1, percent degree of dissociation of HA is. (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Given, Lambda m °( NaCl )=126.4 S cm 2 mol -1 Lambda m °( HCl )=425.9 S cm 2 mol -1 Lambda m 0( NaA )=100.5 S cm 2 mol -1 Lambda m °( HA )= Lambda m °( HCl )+ Lambda m °( NaA )- Lambda m °( NaCl ) =425.9+100.5-126.4 =400 S cm 2 mol -1 Lambda m °=(1000 kappa/ C )=5 × 10-5 × (1000/0.001)=50 α=( Lambda m / Lambda m °)=(50/400)=0.125 ∴ % α=12.5

Q. Λm∘​ 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, percent degree of dissociation of HA is_______.

Given, Λm∘​(NaCl)=126.4Scm2mol−1 Λm∘​(HCl)=425.9Scm2mol−1 Λm0​(NaA)=100.5Scm2mol−1 Λm∘​(HA)=Λm∘​(HCl)+Λm∘​(NaA)−Λm∘​(NaCl) =425.9+100.5−126.4 =400Scm2mol−1 Λm∘​=C1000κ​=5×10−5×0.0011000​=50 α=Λm∘​Λm​​=40050​=0.125 ∴%α=12.5

Q. $Λ_{m}^{\circ}$ 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 $5 \times 1 0^{- 5} S c m^{- 1}$ , percent degree of dissociation of $H A$ is_______.