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NCERT Exemplar · Q56

Q.Match the items of Column I and Column II.
Column I:

(i) κ\kappa
(ii) Λm\Lambda_m
(iii) α\alpha
(iv) QQ
Column II:
(a) I×tI \times t
(b) Λm/Λm0\Lambda_m / \Lambda^0_m
(c) κc\frac{\kappa}{c}
(d) G∗R\frac{G^*}{R}
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This problem matches physical quantities from electrochemistry (Column I) with their defining formulas (Column II). The key is to recall the exact definitions: κ\kappa is conductivity (G∗/RG^*/R), Λm\Lambda_m is molar conductivity (κ/c\kappa/c), α\alpha is degree of dissociation (Λm/Λm0\Lambda_m/\Lambda_m^0), and QQ is charge (I×tI \times t). The correct matches are (i)→(d), (ii)→(c), (iii)→(b), (iv)→(a).

Before we jump into matching, let’s build the intuition. Electrochemistry is full of quantities that look similar but measure very different things. Conductivity (κ\kappa) tells you how well a solution conducts electricity — it’s a property of the solution itself, independent of how much you have. Molar conductivity (Λm\Lambda_m) normalises that by concentration, so you can compare different electrolytes fairly. The degree of dissociation (α\alpha) tells you what fraction of the electrolyte has actually split into ions — it’s a ratio of actual conductivity to the theoretical maximum. And charge (QQ) is simply how much electricity has flowed, which is current times time.

The trap here is mixing up κ\kappa and Λm\Lambda_m — they are related but not the same. Let’s work through each match carefully.

  1. κ\kappa (conductivity)

    Conductivity is the reciprocal of resistivity. In a conductivity cell, you measure resistance RR of the solution. The cell constant G∗G^* (which depends on electrode area and separation) relates them: κ=G∗R\kappa = \frac{G^*}{R}. So κ\kappa matches with (d) G∗R\frac{G^*}{R}.

  2. Λm\Lambda_m (molar conductivity)

    Molar conductivity is defined as the conductivity of the solution divided by the molar concentration: Λm=κc\Lambda_m = \frac{\kappa}{c}. This lets you compare how well one mole of electrolyte conducts. So Λm\Lambda_m matches with (c) κc\frac{\kappa}{c}.

  3. α\alpha (degree of dissociation) …

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