Q.The energy of σ2p_z molecular orbital is greater than π2p_x and π2p_y molecular orbitals in nitrogen molecule. Write the complete sequence of energy levels in the increasing order of energy in the molecule. Compare the relative stability and the magnetic behaviour of the following species :
N2, N2^+, N2^-, N2^2+
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Start your 14-day free trial to unlock the full solution →For (), the orbital lies above the pair. Using molecular orbital theory and bond order, we find is least stable and paramagnetic, and have equal stability (both paramagnetic), and is most stable and diamagnetic.
Why bond order governs stability
Molecular orbital theory builds molecules by combining atomic orbitals into bonding and antibonding MOs. Electrons in bonding orbitals pull nuclei together; those in antibonding orbitals push them apart. The net effect is captured by bond order:
where is the number of electrons in bonding orbitals and in antibonding orbitals. Higher bond order means a stronger, shorter, more stable bond. Magnetic behavior follows from unpaired electrons: any species with unpaired electrons is paramagnetic; all paired means diamagnetic.
For second-period homonuclear diatomics with (B, C, N), – mixing is significant enough that the orbital is pushed above the degenerate and pair. This is the key orbital-ordering difference from and .
Energy-level sequence for nitrogen
The complete MO energy sequence in increasing order for is:
Notice the bonding orbitals come before .
Step-by-step analysis of each species
1. Count total electrons
- : electrons
- : electrons
- : electrons
- : electrons
2. Fill the MO diagram according to the sequence above
| Species | Configuration (valence only: and ) | Bond Order | ||
|---|---|---|---|---|
| 8 | 2 | |||
| 7 | 2 | |||
| 8 | 3 | |||
| 6 | 2 |
3. Determine unpaired electrons
- : all orbitals fully paired → diamagnetic
- : one electron in → paramagnetic
- : one electron in (or ) → paramagnetic …
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