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One mole of N2O4 (g) at 300 K is kept in a closed container under one atmospheric pressure. It is heated to 600 K when 20% by mass of N2O4 (g) decomposes to NO2 (g). The resultant pressure is

(a) 1.2 atm

(b) 2.4 atm

(c) 2.0 atm

(d) 1.0 atm

1 Answer

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Best answer

Correct option is (b) 2.4 atm

The pressure at 300K is 1 atm.

Pressure at 600 K will be \(P_2 = T_2 \times \frac{P_1}{T_1} = 600 \times \frac 1{300} = 2\ atm\).

Decomposition is 20% by mass of N2O4.

N2O4 NO2
Initial pressure 2 0
Change in pressure -0.4 0.8
Equilibrium pressure 1.6 0.8

Total pressure = 1.6 + 0.8 = 2.4.

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