MCQ
For the equilibrium $2N{O_2}_{(g)}$ $\rightleftharpoons$ ${N_2}{O_4}_{(g)}$ $ + 14.6\,kcal$ the increase in temperature would
  • A
    Favour the formation of ${N_2}{O_4}$
  • Favour the decomposition of ${N_2}{O_4}$
  • C
    Not alter the equilibrium
  • D
    Stop the reaction

Answer

Correct option: B.
Favour the decomposition of ${N_2}{O_4}$
(b) The reaction is endothermic in reverse direction and hence increase in temperature will favour reverse reaction.

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free