Q.Explain the bond formation in BeCl₂ and MgCl₂.
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Start your 14-day free trial to unlock the full solution →Step 1. BeCl₂. Beryllium's ground state is [He]2s²; one 2s electron is promoted to an empty 2p orbital, giving 2s¹2p¹. The 2s and 2p orbitals mix into two equivalent sp hybrid orbitals, oriented 180° apart. Each sp orbital overlaps linearly with a chlorine 3p orbital, forming two equivalent Be-Cl σ bonds — giving BeCl₂ its observed LINEAR shape. Because beryllium's small size and high charge density give it unusually strong polarising power (Fajans' rules), BeCl₂'s bonding is treated as predominantly covalent, explained by hybridisation rather than simple ionic transfer.
Step 2. MgCl₂. Magnesium (electronegativity ≈ 1.31) and chlorine (electronegativity ≈ 3.16) have a large electronegativity difference (≈1.85, above the 1.7 threshold for predominantly ionic character). Magnesium loses its two valence electrons to become Mg²⁺; each of two chlorine atoms gains one electron to become Cl⁻. The resulting Mg²⁺ and two Cl⁻ ions are held together by electrostatic (ionic) attraction, forming the MgCl₂ lattice. …
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