If the resistivity of a $0.8 \ M \ KCl$ solution is $2.5 \times 10^{-3} \ \Omega \ cm$,calculate the molar conductivity of the solution.

  • A
    $3 \times 10^{5} \ \Omega^{-1} \ cm^{2} \ mol^{-1}$
  • B
    $2 \times 10^{5} \ \Omega^{-1} \ cm^{2} \ mol^{-1}$
  • C
    $4 \times 10^{5} \ \Omega^{-1} \ cm^{2} \ mol^{-1}$
  • D
    $5 \times 10^{5} \ \Omega^{-1} \ cm^{2} \ mol^{-1}$

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Similar Questions

The specific conductance of a $0.1 \ N \ KCl$ solution at $23 \ ^oC$ is $0.012 \ \Omega^{-1} \ cm^{-1}$. The resistance of a cell containing the solution at the same temperature was found to be $55 \ \Omega$. The cell constant will be .............. $cm^{-1}$.

Match List-$I$ with List-$II$:
List-$I$ (Parameter) List-$II$ (Unit)
$a$. Cell constant $i$. $S\, cm^{2}\, mol^{-1}$
$b$. Molar conductivity $ii$. Dimensionless
$c$. Conductivity $iii$. $m^{-1}$
$d$. Degree of dissociation of electrolyte $iv$. $\Omega^{-1}\, m^{-1}$

Choose the most appropriate answer from the options given below:

For an aqueous solution of $CaCl_2$ electrolyte,the graph between molar conductivity $(\lambda_m)$ and $(\text{concentration})^{1/2}$ is:

State Kohlrausch's law of independent migration of ions and explain its applications.

What happens when the solution of an electrolyte is diluted?

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