Q.Compare the relative stability of the following species and indicate their magnetic properties: , , (superoxide), (peroxide).
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Start your 14-day free trial to unlock the full solution →Stability increases with bond order: . All except peroxide are paramagnetic due to unpaired electrons in orbitals.
Why Bond Order Governs Stability
The strength of a chemical bond—and therefore the stability of a molecule—depends on how many electrons occupy bonding versus antibonding orbitals. Bond order quantifies this balance:
A higher bond order means more net bonding character, a shorter and stronger bond, and greater stability. When we add or remove electrons from , we change the bond order and thus the relative stability.
Magnetism follows directly from electron configuration: any species with unpaired electrons is paramagnetic (attracted to a magnetic field), while species with all electrons paired are diamagnetic.
Molecular Orbital Configuration of Oxygen Species
Oxygen () has 16 electrons in . The molecular orbital diagram for second-period homonuclear diatomics places orbitals in this order:
For our purposes, focus on the valence electrons (the inner , , , are filled and cancel out):
Valence MO filling for (12 valence electrons):
\sigma_{2p_z}^2 \, \pi_{2p_x}^2 \, \pi_{2p_y}^2 \, \pi^*_{2p_x}^1 \, \pi^*_{2p_y}^1
The two electrons in the degenerate orbitals remain unpaired (Hund's rule).
Now let's analyze each species systematically.
1. (neutral oxygen molecule)
Total valence electrons: 12
Configuration: \sigma_{2p_z}^2 \, \pi_{2p_x}^2 \, \pi_{2p_y}^2 \, \pi^*_{2p_x}^1 \, \pi^*_{2p_y}^1
- Bonding electrons:
- Antibonding electrons:
Magnetic property: Two unpaired electrons → paramagnetic
2. (dioxygen cation)
Total valence electrons: 11 (one electron removed from )
The electron is removed from the highest-energy occupied orbital, a orbital:
Configuration: \sigma_{2p_z}^2 \, \pi_{2p_x}^2 \, \pi_{2p_y}^2 \, \pi^*_{2p_x}^1 \, \pi^*_{2p_y}^0
- Bonding electrons: 6
- Antibonding electrons: 1
Magnetic property: One unpaired electron → paramagnetic
Removing an electron from an antibonding orbital actually strengthens the bond. This is why is more stable than .
3. (superoxide ion)
Total valence electrons: 13 (one electron added to )
The extra electron goes into a orbital:
Configuration: \sigma_{2p_z}^2 \, \pi_{2p_x}^2 \, \pi_{2p_y}^2 \, \pi^*_{2p_x}^2 \, \pi^*_{2p_y}^1
- Bonding electrons: 6
- Antibonding electrons: 3 …
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