Q.Define the enthalpy of solution of an ionic compound. Write, in words, how the enthalpy of solution is related to the lattice enthalpy and the enthalpy of hydration, and state whether each of these three quantities is usually endothermic or exothermic.
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Start your 14-day free trial to unlock the full solution →The enthalpy of solution, , is defined as the enthalpy change when one mole of a solute is dissolved in such a large (effectively infinite) quantity of solvent that any further dilution produces no additional, measurable enthalpy change. For an ionic solid dissolving in water, this overall process can be conceptually split, via Hess's law, into two steps: first, breaking apart the solid lattice into free gaseous ions (requiring the input of lattice enthalpy, which is always endothermic, since it involves overcoming the strong electrostatic attraction holding the crystal together); and second, surrounding each of those gaseous ions with water molecules (releasing enthalpy of hydration, which is always exothermic, since new, favourable ion-dipole attractions form between the ion and the polar water molecules). The overall enthalpy of solution is the sum of these two opposing quantities: . Because the endothermic lattice term and the exothermic hydration term are typically similar in magnitude and largely (though rarely exactly) cancel, the net enthalpy of soluti …
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