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Exercises · 10.23

Q.Why is LiF almost insoluble in water whereas LiCl soluble not only in water but also in acetone ?

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Step 1: Solubility of LiF

Both Li+^+ and F−^- are among the smallest ions in their respective groups. When two very small, highly charged ions come together, the lattice enthalpy of the resulting salt is exceptionally high. For LiF, this very high lattice enthalpy is not compensated by the hydration enthalpy released on dissolving, so the overall energetics disfavour dissolution — LiF is almost insoluble in water.

Step 2: Solubility of LiCl in water

Cl−^- is a much larger ion than F−^-, so LiCl has a considerably lower lattice enthalpy than LiF. This lower lattice enthalpy is easily overcome by the hydration enthalpy released when the ions are solvated, so LiCl is readily soluble in water.

Step 3: Solubility of LiCl in acetone …

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