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Q.On the basis of VBT explain the geometry and magnetic behaviour of [Fe(CN)6]3-.

Himachal HpboseHPBOSE Plus Two Board 2019Subjective· 2mImportance★★★★★
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In [Fe(CN)6]3−[Fe(CN)_6]^{3-}, the strong-field CN−CN^- ligand forces electron pairing in Fe3+Fe^{3+}'s d-orbitals, giving an octahedral, d2sp3d^2sp^3-hybridised, low-spin complex with one unpaired electron.

In [Fe(CN)6]3−[Fe(CN)_6]^{3-}, iron is present as Fe3+Fe^{3+}, with the free-ion configuration [Ar]3d5[Ar]3d^5 (5 unpaired electrons in the free ion).

CN−CN^- is a strong field ligand (high in the spectrochemical series), so according to Valence Bond Theory it causes the 5 d-electrons of Fe3+Fe^{3+} to pair up within the three lower (3dxy,3dyz,3dzx3d_{xy}, 3d_{yz}, 3d_{zx}) orbitals as far as possible, leaving the two 3dx2−y23d_{x^2-y^2} and 3dz23d_{z^2} orbitals empty and available for hybridisation. This makes the two inner 3d3d orbitals, one 4s4s, and three 4p4p orbitals combine to give d2sp3d^2sp^3 hybridisation, producing six equivalent hybrid orbitals directed towards the six corners of a regular octahedron — so the geometry is octahedral, and because inner (3d, not outer 4d) orbitals are used, it is called an inner orbital (low-spin) complex.

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