20.9
Crystal field theory can be used to model tetrahedral and square planar transition metal complexes in an analogous manner to the application of this theory in octahedral complexes.
For example, to model the tetrahedral tetrachloronickelate(II) ion, each chloride ligand is replaced by a negative point charge, resulting in a tetrahedral crystal field.
Due to the influence of this field, the dxy, dyz, and dxz orbitals are higher in energy than the dx2−y2 and dz2 orbitals. This is attributed to the stronger interaction between the tetrahedral crystal field and the dxy, dyz, and dxz orbitals.
The higher-energy orbitals possess t2 symmetry and are referred to as the t2 set, while the lower-energy orbitals have e symmetry and comprise the e set.
In comparison to the splitting of the d orbitals in octahedral complexes, the relative energies of the orbitals in tetrahedral complexes are inverted and the crystal field splitting energy, or Δtet, is lower.
In square planar complexes such as the tetracyanonickelate(II) ion, all the ligands lie in the xy plane. Here, a square planar crystal field is obtained by replacing the cyanide ligands with negative point charges.
Under the influence of this
Tetrahedral Complexes
Crystal field theory (CFT) is applicable to molecules in geometries other than octahedral. In octahedral complexes, the lobes of…
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