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प्रश्न
On the basis of VB theory explain the nature of bonding in \[\ce{[Co(C2O4)3]^3-}\].
उत्तर
In the complex entity \[\ce{[Co(C2O4)3]^3-}\] the Co is in +3 oxidation state. The outer electronic configuration of Co3+ is 3d6. The oxalato ligand is fairly strong field ligand. So it faces the 3d electrons in Co3+ to pair up and make two of the 3d orbitals available for bonding. As a result, Co3+ shows d2sp2 hybridisation. Electronic configuration of Co atom Electronic configuration of Co3+ ion Hybridisation and formation of \[\ce{[Co(C2O4)3]^3-}\]
1. There is no unpaired electron in \[\ce{[Co(C2O4)3]^3-}\] Thus \[\ce{[Co(C2O4)3]^3-}\]
2. During the formtion of \[\ce{[Co(C2O4)3]^3-}\], two of the 3d-orbitals are used in bonding. Therefore it is an inner orbital (low spin) complex.
3. The \[\ce{[Co(C2O4)3]^3-}\] has the octahedral geometry.
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