Conductivity of a 0.00241 M acetic acid solution is \(7.896 \times 10^{-5}\) S cm\(^{-1}\).
If \(\Lambda^{\circ}\) for acetic acid is \(390.5\) S cm\(^2\) mol\(^{-1}\), calculate its degree of dissociation (\(\alpha\)).
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For weak electrolytes:
\[
\alpha = \frac{\Lambda_m}{\Lambda^{\circ}}
\]
Molar conductivity increases with dilution due to increased dissociation.