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Q.Write the molecular orbital configuration of N2. Calculate its bond order and predict its magnetic behaviour.

Kerala DhseKerala DHSE Plus One Board 2022Subjective· 4mImportance★★★★★
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N2 has 14 electrons total (7+7). Filling molecular orbitals in the order valid for N2 (π2p below σ2p, since N is a lighter element up to N2) gives bond order 3 and no unpaired electrons, so N2 is diamagnetic.

Step 1 — Total electrons. Each N atom has atomic number 7, so N2 has 14 electrons.

Step 2 — MO filling order (for N2, O2 is different). For elements up to N2, the 2p molecular orbitals fill as:

σ1s² σ1s² σ2s² σ2s² π2px² = π2py² σ2pz²

Step 3 — Bonding vs antibonding electrons.

  • Bonding orbitals: σ1s, σ2s, π2px, π2py, σ2pz → total bonding electrons Nb = 2+2+2+2+2 = 10
  • Antibonding orbitals: σ1s, σ2s → total antibonding electrons Na = 2+2 = 4

Step 4 — Bond order.

Bond order = ½(Nb − Na) = ½(10 − 4) = ½ × 6 = 3

This matches the classical Lewis structure of N≡N (a triple bond), confirming the MO picture.

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