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NCERT Exemplar · Q21

Q.One mole of acetone requires less heat to vapourise than 1 mol of water. Which of the two liquids has higher enthalpy of vapourisation?

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The key idea is that enthalpy of vapourisation is the heat required to vaporise one mole of a substance. Since water needs more heat per mole than acetone, water has the higher enthalpy of vapourisation.

The question gives you a direct comparison: one mole of acetone needs less heat to turn into vapour than one mole of water. That’s the entire experimental fact. The enthalpy of vapourisation, ΔHvap\Delta H_{\text{vap}}, is defined as the heat absorbed when one mole of a liquid vaporises at constant pressure. So if water takes more heat per mole, its ΔHvap\Delta H_{\text{vap}} is larger.

Why does this difference exist? It comes down to intermolecular forces. Water molecules form strong hydrogen bonds with each other — each molecule can participate in up to four hydrogen bonds. Breaking those bonds to escape into the vapour phase requires a lot of energy. Acetone molecules have dipole-dipole interactions (and weaker hydrogen bonding via the carbonyl oxygen), but nothing as extensive as water’s network. So water’s ΔHvap\Delta H_{\text{vap}} is significantly higher.

Let’s walk through the reasoning step by step.

  1. Understand the definition. Enthalpy of vapourisation, ΔHvap\Delta H_{\text{vap}}, is the heat required to convert one mole of a liquid into vapour at constant pressure and temperature. It’s a molar quantity — always per mole.

  2. Interpret the given fact. The problem states: “One mole of acetone requires less heat to vapourise than 1 mol of water.” That is a direct statement about the molar heat of vapourisation. In symbols:

    Qacetone<QwaterQ_{\text{acetone}} < Q_{\text{water}} for one mole each.

  3. Connect heat to enthalpy. At constant pressure (which is the usual condition for boiling), the heat absorbed equals the change in enthalpy: Q=ΔHQ = \Delta H. So the statement becomes:

    ΔHvap, acetone<ΔHvap, water\Delta H_{\text{vap, acetone}} < \Delta H_{\text{vap, water}}. …

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