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Q.Discuss the splitting of d-orbitals in an octahedral crystal field.

Odisha ChseOdisha CHSE +2 Science Board Exam 2026Subjective· 3mImportance★★★★★
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Octahedral ligand field splits the five d-orbitals into a lower t2gt_{2g} set and a higher ege_g set, separated by Δo\Delta_o.

In a free (gaseous) metal ion, all five d-orbitals (dxyd_{xy}, dyzd_{yz}, dxzd_{xz}, dz2d_{z^2}, dx2−y2d_{x^2-y^2}) are degenerate (equal energy). When six ligands approach the metal ion symmetrically along the ±x\pm x, ±y\pm y, ±z\pm z axes to form an octahedral complex, their negative charge/electron pairs interact differently with different d-orbitals depending on the orbital's spatial orientation relative to the ligand approach directions:

  • The dz2d_{z^2} and dx2−y2d_{x^2-y^2} orbitals (together called the ege_g set) have their lobes pointing DIRECTLY along the x, y, z axes, i.e., straight at the incoming ligands. These orbitals therefore experience strong electrostatic repulsion from the ligand electron pairs and are raised to HIGHER energy.
  • The dxyd_{xy}, dyzd_{yz}, dxzd_{xz} orbitals (together called the t2gt_{2g} set) have their lobes pointing BETWEEN the axes, away from the direct line of ligand approach. They experience comparatively less repulsion and are therefore LOWERED in energy relative to the average (barycentre). …

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