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The enthalpy of solution is the enthalpy change when 1 mole of an ionic substance dissolves in enough solvent, typically water, to form an infinitely dilute solution.
For example, the dissolution of sodium chloride can be represented as:
Ionic compounds dissolve when their lattice structure breaks down and their ions become surrounded by solvent molecules.
The enthalpy of solution can be calculated using:
where:
Example: Calculating the Enthalpy of Solution for For sodium chloride ()
Lattice Dissociation:
Break down into and , which is endothermic ().
Hydration of Ions:
Hydrate the and ions in water to form and , releasing energy ( for and ).
The enthalpy of solution is the sum:
Water is a polar molecule with partial positive and negative charges on the hydrogen and oxygen atoms, respectively. This polarity allows water to interact with ions in ionic compounds:
By understanding the enthalpies of lattice dissociation and hydration, we can determine whether a compound will dissolve in water and how much energy is involved in the process.
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Thermodynamics (A Level only)
Comparing Lattice Enthalpies
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