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Exercise · Q22

Q.Define the standard enthalpy of atomization of an element, and write the equation, with state symbols, for the atomization of methane and of dihydrogen gas.

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The standard enthalpy of atomization, ΔaH∘\Delta_aH^\circ, is defined as the enthalpy change when one mole of a substance is completely converted into gaseous atoms, under standard conditions. It is always a positive (endothermic) quantity, since breaking bonds always requires an input of energy — atomization can be thought of as the ultimate, complete bond-breaking process. For methane, all four C–H bonds must be broken to produce isolated gaseous carbon and hydrogen atoms: CH4(g)→C(g)+4H(g)\text{CH}_4(g) \rightarrow \text{C}(g) + 4\text{H}(g). For dihydrogen gas, the single covalent bond in each H2\text{H}_2 molecule must be broken: $\text{H}_2(g) \rightarrow 2\text{H …

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