A standard aqueous solution of a weak acid HX has a pH of 5 and shows a conductance of 4×10–5 S when placed in a conductivity cell with electrode separation of 15 cm and cross-sectional area of 1 cm².
Assuming that the degree of dissociation of HX is very small, calculate the limiting molar conductivity of the solution (in Sm2mol-1).
1. Three (3)| 1. | \( \mathrm{S} \mathrm{cm}^{1 / 2} \mathrm{~mol}^{-1 / 2}\) | 2. | \(\mathrm{S} \mathrm{cm}^{3 / 2} \mathrm{~mol}^{-2}\) |
| 3. | \(\mathrm{S} \mathrm{cm}^{7 / 2} \mathrm{~mol}^{-3 / 2}\) | 4. | \(\mathrm{S} \mathrm{cm}^{5 / 2} \mathrm{~mol}^{-3 / 2}\) |

| 1. | \(3.08 \times 10^{-7} cm^{-1}\) | 2. | \(30.8 \times 10^{-7} cm^{-1}\) |
| 3. | \(0.308 \times 10^{-9} cm^{-1}\) | 4. | \(4.08 \times 10^{-6} cm^{-1}\) |
Determine the cell constant of a conductivity cell containing a 0.01 M KCl solution at 298 K. The given data includes a resistance of 1750 Ω and a conductivity of 0.152×10−3 S cm−1.
| 1. | \(266 \times 10^{-3} \mathrm{~m}^{-1}\) | 2. | \(166 \times 10^{-3} \mathrm{~cm}^{-1}\) |
| 3. | \(266 \times 10^{-3} \mathrm{~cm}^{-1}\) | 4. | \(166 \times 10^{-3} \mathrm{~m}^{-1}\) |