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Example · Example 8

Q.The industrial synthesis of ammonia, N2(g)+3H2(g)⇌2NH3(g)\text{N}_2(g) + 3\text{H}_2(g) \rightleftharpoons 2\text{NH}_3(g), is exothermic. Using Le Chatelier's principle, predict and explain the effect on the equilibrium yield of NH3\text{NH}_3 of

(a) raising the temperature and
(b) why industrial plants nevertheless operate at a moderately high temperature rather than the lowest possible temperature.
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Since the forward reaction releases heat, heat can be treated as a product:\ N2(g)+3H2(g)⇌2NH3(g)+heat\text{N}_2(g)+3\text{H}_2(g) \rightleftharpoons 2\text{NH}_3(g) + \text{heat}. By Le Chatelier's principle, adding heat (raising temperature) shifts the equilibrium away from the side that heat appears on — that is, backward, toward the reactants — so the equilibrium concentration (and yield) of NH3\text{NH}_3 falls, and correspondingly the numerical value of KcK_c (or KpK_p) decreases with rising temperature for this exothermic reaction. Despite this, industrial ammonia plants (the Haber process) are run at around 700 K700\ \text{K} rather than at room temperature: at low temperature the equilibrium yield would indeed be higher, but the rate at which that equilibrium is approached becomes so slow that essentially no ammonia forms within a practical timescale. A modera …

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