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Exercises · 10.22

Q.Why are lithium salts commonly hydrated and those of the other alkali ions usually anhydrous?

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Step 1: Compare ionic sizes across Group 1

Li+^+ is by far the smallest cation in Group 1; ionic radius increases steadily down the group to Cs+^+.

Step 2: Link size to hydration enthalpy

Smaller ions have a higher charge density, so they attract and hold on to surrounding water dipoles much more strongly (higher hydration enthalpy). Li+^+ therefore has by far the largest hydration enthalpy in the group.

Step 3: Effect on the solid salt

Because of this strong attraction for water, Li+^+ tends to retain water molecules directly within its crystal lattice when its salts are crystallised out of aqueous solution, giving hydrated salts such as LiCl·2H2_2O.

Step 4: Contrast with the heavier alkali metal ions …

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