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Q.Explain the structure of diborane.

Telangana TsbieTelangana Board of Intermediate Education (Intermediate 1st Year) 2025Subjective· 4mImportance★★★★★
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Figure — Structure of diborane B2H6 showing 3-centre-2-electron (banana) bonding. Two boron atoms on a horizo
Figure — Structure of diborane B2H6 showing 3-centre-2-electron (banana) bonding. Two boron atoms on a horizo

Diborane's 8 B–H bonds are formed from only 12 valence electrons; it achieves this using 4 ordinary terminal bonds plus 2 unusual 3-centre-2-electron bridge bonds holding the two boron atoms together via bridging hydrogens.

Electron deficiency: each B2H6B_2H_6 molecule has 2(3)+6(1)=122(3) + 6(1) = 12 valence electrons available, but there are 88 B–H 'connections' to account for (if each were a normal 2-electron bond, 1616 electrons would be needed). B2H6B_2H_6 is therefore an electron-deficient molecule and cannot be described by conventional 2-centre-2-electron (2c–2e) bonding alone.

Structure:

  • Each boron atom is sp3sp^3 hybridised.
  • Each B atom forms 2 terminal B–H bonds, normal 2c–2e covalent bonds, using 2 of its sp3sp^3 orbitals — 4 terminal B–H bonds in total, lying in a plane.
  • The remaining 2 sp3sp^3 orbitals on each boron atom, together with the 1s orbital of a bridging hydrogen, form a three-centre two-electron (3c–2e) bond — often called a 'banana bond' because of its curved electron-density shape — spanning both boron atoms and one bridging H. There are 2 such bridge bonds, using the 2 remaining bridging hydrogens. …

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