\( 1.1 \) mole of \( A \) are mixed with \( 2.2 \) mole of \( B \) and the mixture is then kept ...
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\( 1.1 \) mole of \( A \) are mixed with \( 2.2 \) mole of \( B \) and the mixture is then kept in one litre flask till the equilibrium is attained \( A+2 B \rightleftharpoons 2 C+D \). At the equilibrium \( 0.2 \) mole of \( C \) are formed. The equilibrium constant of the reaction is:
(A) \( 0.001 \)
(B) \( 0.002 \)
(C) \( 0.003 \)
(D) \( 0.004 \)
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