Home
Class 12
CHEMISTRY
For the reaction N(2(g)) + O(2(g))hArr2N...

For the reaction `N_(2(g)) + O_(2(g))hArr2NO_((g))`, the value of `K_(c)` at `800^(@)C` is `0.1`. When the equilibrium concentrations of both the reactants is `0.5` mol, what is the value of `K_(p)` at the same temperature

A

`0.5`

B

`0.1`

C

`0.01`

D

`0.025`

Text Solution

Verified by Experts

The correct Answer is:
B

`N_(2(g))+O_(2(g))hArr2NO_((g))`
`K_(c)=0.1 K_(p)=K_(c)(RT)^(Deltan)`
`Deltan=0,K_(p)=K_(c)=0.1`
Promotional Banner

Similar Questions

Explore conceptually related problems

For the reaction N_(2(g))+O_(2(g))rArrNO_((g)) , the value of K_(c) at 800^(@) C is 0.1 . What is the value of K_(p) at this temperature ?

For the reaction H_(2)(g) + I_(2)(g)hArr2HI(g) at 721 K the value of equilibrium constant (K_(c)) is 50. When the equilibrium concentration of both is 0.5 M, the value of K_(p) under the same condtions will be

In the reaction 2NO(g) hArr N_(2)(g)+O_(2)(g) , the values of K_(c) and K_(p) are ……….. at a given temperature.

For the reaction CO(g)+(1)/(2) O_(2)(g) hArr CO_(2)(g),K_(p)//K_(c) is