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Q.[NiCl4]2−[NiCl_4]^{2-} is paramagnetic, while [Ni(CO)4][Ni(CO)_4] is diamagnetic, though both are tetrahedral. Why?

(OR)
Explain the following each with an example -
(a) Geometrical Isomerism
(b) Optical Isomerism
Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2023Subjective· 2mImportance★★★★★
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The two complexes differ in the oxidation state (and hence d-electron count) of nickel, even though both are tetrahedral.

In [NiCl4]2−[NiCl_4]^{2-}, nickel is present as Ni2+Ni^{2+}, which has a 3d83d^8 configuration. Cl−Cl^- is a weak field ligand and does not cause pairing of electrons, so the complex adopts sp3sp^3 hybridisation (tetrahedral) with 2 unpaired electrons remaining in the d-orbitals — this makes it paramagnetic.

In [Ni(CO)4][Ni(CO)_4], nickel is present in the zero oxidation state, Ni0Ni^{0}, which has a 3d10 4s03d^{10}\,4s^0 configuration (all 10 d-electrons already paired even before ligand bonding, since the neutral atom's outer electrons all go into completing the d-subshell for this complex). With sp3sp^3 hybridisation (tetrahedral) and no unpaired electrons, the complex is diamagnetic.

So, although both complexes are tetrahedral, they differ in the oxidation state of Ni (which changes the number of d-electrons and hence unpaired electrons), giving different magnetic behaviour.

OR:

(a) Geometrical isomerism: Arises in heteroleptic complexes (with two or more different types of ligands) due to different possible spatial arrangements of ligands around the central metal atom. Example: the square planar complex [Pt(NH3)2Cl2][Pt(NH_3)_2Cl_2] exists as a cis isomer (identical ligands adjacent, at 90°) and a trans isomer (identical ligands opposite, at 180°).

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