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Q.[Ti(H2O)6]3+ is coloured, but [Sc(H2O)6]3+ is colourless — explain.

Tripura TbseHigher Secondary (+2 Stage) Examination 2023Subjective· 1mImportance★★★★★
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Colour in transition-metal complexes arises from d-d electronic transitions; this requires the metal ion to have partially filled d-orbitals (neither empty nor completely full). Ti3+ (3d1) has such an electron and is coloured; Sc3+ (3d0) has none and is colourless.

[Ti(H2O)6]3+: Titanium (Z=22) has configuration [Ar]3d2 4s2; Ti3+ loses 3 electrons (2 from 4s, 1 from 3d) to give [Ar]3d1 - i.e., ONE d-electron. In the octahedral aqua complex, the surrounding water ligands split the d-orbitals into lower t2g and higher eg sets. The single d-electron can absorb a specific wavelength of visible light and get excited from t2g to eg (a d-d transition). The complementary colour of the absorbed light is what we observe (violet colour for this ion).

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