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The decomposition of N(2)O(4) to NO(2) i...

The decomposition of `N_(2)O_(4)` to `NO_(2)` is carried out at `280^(@)C` in chloroform. When equilibrium is reached, `0.2` mol of `N_(2)O_(4)` and `2xx10^(-3)` mol of `NO_(2)` are present in a `2L` solution. The equilibrium constant for the reaction
`N_(2)O_(4) hArr 2NO_(2)` is

A

`1xx10^(-2)`

B

`2xx10^(-3)`

C

`1xx10^(-5)`

D

`2xx10^(-5)`

Text Solution

Verified by Experts

The correct Answer is:
C
`K = ([NO_(2)]^(2))/([N_(2)O_(4)]) = ([2xx(10^(-3))/(2)]^(2))/([.2)/(2)] =(10^(-6))/(10^(-1)) = 10^(-5)` .
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