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Question

In a reaction A+2B 2C; 2 moles ofA, 3 mole of B and 2 mole of C are placed in a 2 L flask and the equilibrium concentration of C is 0.5 mole/L. The equilibrium constant K for the reaction is:

A
0.073
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B
0.147
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C
0.05
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D
0.026
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Solution

The correct option is C 0.05
A+2B2CInitial moles232Molar conc.2/2=1mol/L3/2=1.5 mol/L2/2=1mol/LAt Equi.Conc1+0.25=1.25mol/L1.5+0.5=2mol/L0.5 mol/L

K = (0.5)2/ ( 1.25×(2)2)= 0.05 Note that concentration of C has decreased, i.e., to attain equilibrium, reaction has shifted backwards. Decrease in conc. of C will be 0.5 mol/L and hence increase in concentration of B will be 0.5 mol/L and that of A will be 0.25 mol/L

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