Calculate the degree of dissociation of HI as 2HI⇌H2+I2 at 450oC , if the equilibrium constant for the dissociation reaction is 0.263.
A
0.688
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B
0.326
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C
0.454
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D
0.253
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Solution
The correct option is D0.253 Let degree of dissociation of HI = α Let initial moles of the HI be 1 and the volume be V 2HI⇌H2+I2 initial moles 100 At equili. 1−2ααα Kc = [H2][I2][HI]2 Kc = αV×αV[1−2αV]2 Kc = (α)2(1−2α)2 √0.263=α1−2α Solving for α, we get 0.253