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Exercises · 11.19

Q.Explain structures of diborane and boric acid.

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Diborane's electron-deficient bonding is solved by two 3-centre-2-electron bridge bonds; boric acid is a hydrogen-bonded 2-D network of planar BO3_3 units.

Diborane, B2_2H6_6

  1. Electron count. Each boron atom has only 3 valence electrons, so B2_2H6_6 has 2(3)+6(1)=122(3) + 6(1) = 12 valence electrons — but 7 bonds (if all B–H were normal 2c-2e bonds) would need 14 electrons. Diborane is therefore "electron-deficient."
  2. Structure. Each boron is sp3sp^3 hybridised. Four hydrogens (two on each boron) are terminal, forming ordinary 2-centre-2-electron B–H bonds lying in a plane. The remaining two hydrogens are bridging, lying above and below this plane, each connecting both boron atoms.
  3. Bridge bonding. Each bridge is a 3-centre-2-electron (3c-2e) bond: one B–H–B unit is held together by just 2 electrons shared across all three nuclei (a "banana bond"), rather than two separate 2-electron bonds. This uses the remaining orbitals/electrons economically and satisfies boron's electron deficiency.

Boric acid, H3_3BO3_3

4. Basic unit. Boron is sp2sp^2 hybridised, bonded to three –OH groups in a planar, triangular BO3_3 unit. …

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