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Question

In a container equilibrium
N2O4(g)2NO2(g)
is attained at 25oC. The total equilibrium pressure in container is 380 torr. If equilibrium constant of above equilibrium is 0.667 atm, then degree of dissociation of N2O4 at this temperature will be:

A
13
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B
12
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C
23
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D
14
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Solution

The correct option is B 12
N2O42NO2initial1At equilibrium1α2α

Total moles at equilibrium =1α+2α=1+α
We know that
Partial pressure=total pressure×mole fraction
Partial pressure of N2O4=(1α)(1+α)P
Partial pressure of NO2=(2α)(1+α)P
KP=[PNO2]2PN2O4=[2α1+αP]2(1α1+α)P=4α2(1+α)2P2(1α)(1+α)P
KP=4α2.P(1α)(1+α)=4α2(1α2)×12
{P = 380 torr = 0.5 atm}
0.667=23=4α2(1α2)12
4α2(1α2)=43 or 3α2=1α2
α2=14, α=12
Therefore, the correct option is (b).

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