Number of electrons lost dring electroly...

Number of electrons lost dring electrolysis of `0.355g` of `Cl^(c-)` is `(N_(A)=`Avogadro's number `)`

A

`0.01`

B

`0.01N_(A)`

C

`0.02N_(A)`

D

`(0.01)/(2N_(A))`

Text Solution

Verified by Experts

The correct Answer is:

b

`Cl^(c-)+e^(-)rarr (1)/(2) Cl_(2)`
`1F=1e^(-) = 1 mol of e^(-) = N_(A)=35.5g Cl_(2)`
`:. 35.5 g of Cl_(2)=(N_(A)xx0.355)/(35.5)`
`=0.01 N_(A)`

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