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Question
The molar conductance at infinite dilution of Al2(SO4)3 is 858 ohm−1 cm2 mol−1. Calculate the molar conductance at infinite dilution of Al3+ ion if that of \[\ce{SO^{2-}_{4}}\] ion is 160 ohm−1 cm2 mol−1.
Numerical
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Solution
Given: For the salt Al2(SO4)3, it dissociates as:
\[\ce{Al2(SO4)3 −> 2Al^3+ + 3SO^{2−}_{4}}\]
Total molar conductance at infinite dilution:
\[\ce{\Lambda^0_m = 2 \lambda^0(Al^3+) + 3 \lambda^0(SO^{2−}_{4})}\]
\[\ce{\Lambda^0_m (Al2(SO4)3)}\] = 858 Ω−1 cm2 mol−1
\[\ce{\lambda^0(SO^{2−}_{4})}\] = 160 Ω−1 cm2 mol−1
858 = 2λ0 (Al3+) + 3 × 160
858 = 2λ0 (Al3+) + 480
858 − 480 = 2λ0 (Al3+)
378 = 2λ0 (Al3+)
λ0 (Al3+) = 189 Ω−1 cm2 mol−1
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