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Q.Which of the following solutions of KCl will have the highest value of molar conductivity ? (A) 0.01 M (B) 1 M (C) 0.5 M (D) 0.1 M

CBSECBSE Class XII Board 2023MCQ· 1mImportance★★★★★
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Molar conductivity (Λm\Lambda_m) increases as concentration decreases because weaker ion-ion interactions allow ions to move more freely. Among the given options, the most dilute solution (0.01 M) will have the highest Λm\Lambda_m.

The key to this question lies in understanding how molar conductivity behaves with concentration — and why.

Molar conductivity, Λm\Lambda_m, is defined as the conductivity of a solution divided by its molar concentration:

Λm=κc\Lambda_m = \frac{\kappa}{c}

But the real story is not just this formula — it's the physical reason Λm\Lambda_m changes with dilution.

In a concentrated solution, ions are packed closely together. Their mutual electrostatic attractions and repulsions (ion-ion interactions) hinder each other's movement. Think of a crowded room: everyone slows down because they keep bumping into each other. As you dilute the solution, the ions move farther apart, these interactions weaken, and each ion can move more freely toward the electrodes. So molar conductivity increases as concentration decreases.

This is true for strong electrolytes like KCl, which is fully dissociated in water. The limiting molar conductivity Λm0\Lambda_m^0 (at infinite dilution) is the maximum possible value — when ions are so far apart they don't feel each other at all.

Now, let's apply this to the options.

  1. Identify the concentrations given.

    The options are:

    (A) 0.01 M

    (B) 1 M

    (C) 0.5 M

    (D) 0.1 M

    These are all different molarities of KCl. The smallest number corresponds to the most dilute solution.

  2. Recall the trend for strong electrolytes.

    For a strong electrolyte like KCl, Λm\Lambda_m increases as cc decreases. The relationship is approximately linear for dilute solutions (Kohlrausch's law):

Λm=Λm0−Ac\Lambda_m = \Lambda_m^0 - A\sqrt{c}

where AA is a constant. So the smaller the cc, the larger the Λm\Lambda_m.

  1. Compare the concentrations. Ordering from most dilute to most concentrated: …

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