(B) The relationship between molar conductivity $(\Lambda_m)$ and conductivity $(k)$ is given by the formula: $\Lambda_m = \frac{k \times 1000}{M}$.Gi

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$9.2 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$

(B) The relationship between molar conductivity $(\Lambda_m)$ and conductivity $(k)$ is given by the formula: $\Lambda_m = \frac{k \times 1000}{M}$.Given: $\Lambda_m = 230 \ \Omega^{-1} \ cm^2 \ mol^{-1}$ and $M = 0.04 \ M$.Substituting the values: $230 = \frac{k \times 1000}{0.04}$.Solving for $k$: $k = \frac{230 \times 0.04}{1000}$.$k = \frac{9.2}{1000} = 9.2 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$.

Class 12 Chemistry Electrochemistry Conductor and Conductance and Cell constant

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Molar conductivity of $0.04 \ M \ BaCl_2$ solution is $230 \ \Omega^{-1} \ cm^2 \ mol^{-1}$ at $27^{\circ} C$. What is its conductivity?

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A
$2.3 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$
B
$9.2 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$
C
$6.9 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$
D
$4.6 \times 10^{-3} \ \Omega^{-1} \ cm^{-1}$

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Molar conductivity of $0.04 \ M \ BaCl_2$ solution is $230 \ \Omega^{-1} \ cm^2 \ mol^{-1}$ at $27^{\circ} C$. What is its conductivity?

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Which among the following aqueous salt solutions is used in a conductivity cell to determine the cell constant?

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