The weight of potassium dichromate (molecular | vedclass

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(D) $K_2Cr_2O_7$ acts as an oxidizing agent in an acidic medium. The half-reaction is: $Cr_2O_7^{2-} + 14H^{+} + 6e^{-} \longrightarrow 2Cr^{3+} + 7H_

Vedclass · Accepted Answer

$0.49$

Vedclass · Answer

(D) $K_2Cr_2O_7$ acts as an oxidizing agent in an acidic medium. The half-reaction is: $Cr_2O_7^{2-} + 14H^{+} + 6e^{-} \longrightarrow 2Cr^{3+} + 7H_2O$ Since the reaction involves $6$ electrons,the n-factor is $6$. $	ext{Equivalent weight} = \frac{	ext{Molar mass}}{n	ext{-factor}} = \frac{294}{6} = 49 \ g/eq$. Normality $(N)$ is given by: $N = \frac{	ext{Weight}}{	ext{Equivalent weight} 	imes 	ext{Volume in Liters}}$ $0.04 = \frac{	ext{Weight}}{49 	imes 0.250}$ $	ext{Weight} = 0.04 	imes 49 	imes 0.250$ $	ext{Weight} = 0.01 	imes 49 = 0.49 \ g$.

The weight of potassium dichromate (molecular weight $= 294$) required to prepare $250 \ mL$ of $0.04 \ N$ solution is (in $g$)

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