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Q.N2 + 3H2 -> 2NH3. How will this reaction at equilibrium be affected by temperature and pressure?

Rajasthan RbseRajasthan Board Senior Secondary Part-I Examination 2018Subjective· 2mImportance★★★★★
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By Le Chatelier's principle, higher temperature reduces NH3 yield (since the forward reaction is exothermic) while higher pressure increases NH3 yield (since the forward reaction decreases the total moles of gas).

The reaction N2(g) + 3H2(g) ⇌ 2NH3(g) (the Haber process) is exothermic in the forward direction (ΔH < 0), and the forward reaction reduces the total number of gas moles from 4 (1 + 3) to 2.

Effect of temperature: Since the forward reaction releases heat, by Le Chatelier's principle, raising the temperature shifts the equilibrium in the direction that absorbs the added heat — i.e., backward, toward N2 and H2 — decreasing the yield of NH3. Lowering the temperature favours the forward (exothermic) reaction and increases NH3 yield, although at very low temperature the rate of reaction becomes too slow, so industrially a moderate temperature (around 700 K) is used as a compromise.

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