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Q.What is Bond enthalpy? Arrange H2, N2 and O2 in increasing order of Bond enthalpy. [1+1=2] OR Draw the structure of SF6 and SF4 on the basis of VSEPR theory. [1+1=2]

Meghalaya MboseMBOSE Meghalaya 11th Board 2019Subjective· 2mImportance★★★★★
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Bond enthalpy is the energy needed to break one mole of a bond in the gas phase; since N2 has a triple bond, O2 a double bond and H2 a single bond, bond enthalpy increases as H2 < O2 < N2.

Definition: Bond enthalpy (or bond dissociation enthalpy) is the amount of energy required to break one mole of a particular type of bond between two atoms in a gaseous molecule, producing the separated gaseous atoms/fragments. It is always a positive quantity (bond breaking absorbs energy) and is a measure of bond strength — the higher the bond enthalpy, the stronger the bond.

Comparing H2, N2 and O2:

  • H2 has a single H-H bond: bond enthalpy ≈ 436 kJ/mol.
  • O2 has a double O=O bond: bond enthalpy ≈ 498 kJ/mol.
  • N2 has a triple N≡N bond: bond enthalpy ≈ 946 kJ/mol — one of the strongest bonds known, which is why N2 gas is so chemically unreactive at room temperature. …

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