The specific conductivity of an aqueous solution of a weak monoprotic acid is `0.00033 ohm^(-1) cm^(-1)` at a concentration 0.02 M. If at this concentration the degree of dissociation is 0.043, then calculate the value of `lambda_(0) ("in" ohm^(-1)cm^(2)//eqt)`:A. 483B. 438C. 348D. 384

The specific conductivity of an aqueous solution of a weak monoprotic

1.	The specific conductivity of an aqueous solution of a weak monoprotic acid is `0.00033 ohm^(-1) cm^(-1)` at a concentration 0.02 M. If at this concentration the degree of dissociation is 0.043, then calculate the value of `lambda_(0) ("in" ohm^(-1)cm^(2)//eqt)`:A. 483B. 438C. 348D. 384
Answer» Correct Answer - D `alpha=0.043=lambda_m/lambda_oo` and `lambda_m=0.00033xx50xx10^3=33xx50xx10^(-2)` so `lambda_oo=(33xx50xx10^(-2))/0.043 =383.72 ~~384`

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The specific conductivity of an aqueous solution of a weak monoprotic acid is `0.00033 ohm^(-1) cm^(-1)` at a concentration 0.02 M. If at this concentration the degree of dissociation is 0.043, then calculate the value of `lambda_(0) ("in" ohm^(-1)cm^(2)//eqt)`:A. 483B. 438C. 348D. 384

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