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Exercise · Q11

Q.Explain the following:
BeCl2 is covalent while MgCl2 is ionic.

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Step 1. Compare ionic size and charge density. Be²⁺ (ionic radius 31 pm) is far smaller than Mg²⁺ (72 pm), so for the same +2 charge, Be²⁺ has a much higher charge density.

Step 2. Apply the polarisation idea. A small, highly charged cation strongly attracts and distorts (polarises) the electron cloud of a large, easily-deformed anion like Cl⁻ — pulling shared electron density toward the cation and giving the bond genuine covalent character. Be²⁺'s very high charge density makes it polarise Cl⁻ strongly.

Step 3. Contrast with Mg²⁺. Mg²⁺'s much lower charge density means it cannot distort Cl⁻'s electron cloud nearly as much, so the Mg–Cl bond remains predominantly ionic (electrostatic attraction between essentially separate ions). …

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