20.8
Crystal field theory describes the electronic structure of transition metal complexes based on electrostatic interactions between transition metal ions and ligand molecules. It has been used to explain certain properties of transition metal complexes such as magnetism and color.
The electrostatic interactions between the ligand molecules and the metal ion in a transition metal complex are modeled by approximating the ligands as negative point charges and calculating the net electrostatic field, or crystal field, due to these charges.
The electronic structure of the transition metal complex can then be described by examining the effect of the crystal field on the energies of the valence orbitals of the transition metal ion.
For example, when modeling the octahedral complex hexaamminecobalt(III), each amine ligand is replaced by a negative point charge, resulting in an octahedral crystal-field.
Under the influence of this field, the energies of the five d orbitals of the Co(III) ion are no longer the same.
Here, the dx2−y2 and dz2 orbitals have higher energy than the dxy, dyz, and dxz orbitals. This is attributed to the orientation of the d orbitals. The lobes of the dx2−y2 and dz² o
To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions bet…
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