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Q.Why Cu (I) is colourless and Cu (II) is blue in colour ?

Punjab PsebPSEB Punjab Class 12 Board 2019Subjective· 2mImportance★★★★★
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Colour in transition-metal ions comes from d-d electronic transitions, which need a partially-filled d subshell; Cu+^+ has a full 3d10^{10} shell (no transition possible = colourless), Cu2+^{2+} has 3d9^9 (one unpaired electron, transition possible = coloured).

Copper: [Ar]3d10^{10}4s1^1.

Cu(I) — Cu+^+: loses the single 4s electron, giving configuration [Ar]3d10^{10}. The 3d subshell is completely filled. Since colour arises from an electron being excited from a lower-energy d-orbital to a higher-energy d-orbital (a d-d transition, split by the ligand field), a completely filled 3d10^{10} subshell has no vacant d-orbital for an electron to jump into — no d-d transition is possible, so Cu(I) compounds are colourless.

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