Question

The molar conductivities of $NaOH,NaCl$ and $BaC{l}_2$ at infinite dilution are $2.481\times 10^{-2}S{m}^{2}mo{l}^{-1},1.265\times 10^{-2}S{m}^{2}mo{l}^{-1}$ and $2.800\times 10^{-2}S{m}^{2}mo{l}^{-1}$ respectively. The molar conductivity of $Ba(OH{)}_2$ at infinite dilution will be

• A. $5.232\times 10^{-2}S{m}^{2}mo{l}^{-1}$
• B. $9.654\times 10^{-2}S{m}^{2}mo{l}^{-1}$
• C. $4.016\times 10^{-2}S{m}^{2}mo{l}^{-1}$
• D. $1.145\times 10^{-2}S{m}^{2}mo{l}^{-1}$

Answer 1

Answer: (A)

${\Lambda }_m^{\circ }[Ba(OH)2]$
$={\Lambda }_m^{\circ }(BaC{l}_2)+2{\Lambda }_m^{\circ }(NaOH)-2{\Lambda }_m^{\circ }(NaCl)$
= $(2.8+2\times 2.481-2\times 1.265)\times 10^{-2}S{m}^{2}mo{1}^{-1}$
= $(2.8+4.962-2.53)\times 10^{-2}S{m}^{2}mo{l}^{-1}$
= $5.232\times 10^{-2}S{m}^{2}mo{l}^{-1}$