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Q.(i) Most of the transition metal ions exhibit characteristic colour in aqueous solution. [1]

(ii) Many of the transition elements are known to form interstitial compounds, explain. [1]
(iii) Transition metals and their compounds generally exhibit paramagnetic behaviour, why? [1]
(iv) Cr2+ is a strong reducing agent, while Mn3+ with the same configuration is an oxidising agent, why? [1]
(v) Zn, Cd and Hg are not typical transition elements, why? [1] OR Complete and balance the following chemical equations: [1 x 5 = 5]
(i) Cr2O7^2-(aq) + H2S(g) + H+(aq) -> .........
(ii) Cu2+(aq) + I-(aq) -> .........
(iii) Fe2+ + MnO4- + H+ -> .........
(iv) MnO4- + H2O + I- -> .........
(v) Na2Cr2O7 + KCl -> .........
Haryana BsehBSEH Intermediate Board 2026Subjective· 5mImportance★★★★★
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Transition-metal colour comes from d-d electronic transitions; small interstitial voids in the metal lattice trap small non-metal atoms; unpaired d-electrons give paramagnetism; the extra stability of half-filled (d5) and other special d-configurations governs which oxidation state is favoured (hence Cr2+ reduces, Mn3+ oxidises); and Zn, Cd, Hg are excluded from 'typical' transition character because their d-shell is always completely filled (d10).

  1. Characteristic colour of transition metal ions: Transition metal ions have partially filled dd-orbitals. Surrounding ligands split the degenerate d-orbitals into sets of different energy (crystal field splitting). Electrons can absorb a specific wavelength of visible light to jump between these split d-orbitals (a d-d transition); the wavelength(s) NOT absorbed are transmitted/reflected, and we see the complementary colour.
  2. Interstitial compounds: Transition metal crystal lattices contain small octahedral/tetrahedral voids (interstitial spaces) between the closely-packed metal atoms. Small atoms of non-metals — H, C, N, B — can occupy these voids without disrupting the metallic lattice, forming interstitial compounds (e.g. TiCTiC, Fe3HFe_3H, Mn4NMn_4N). These compounds retain metallic conductivity/lustre but become harder, denser, and have higher melting points than the pure metal.
  3. Paramagnetism in transition metals: Most transition metal ions have unpaired electrons in their dd-orbitals (since d-orbitals are only partially filled). Any species with unpaired electrons is attracted (weakly) by an external magnetic field — this is paramagnetism. The magnetic moment increases with the number of unpaired electrons (μ=n(n+2)\mu = \sqrt{n(n+2)} BM). (iv) Cr2+Cr^{2+} reducing vs Mn3+Mn^{3+} oxidising (both nominally d4d^4): Cr2+Cr^{2+} (d4d^4) readily loses an electron to become Cr3+Cr^{3+} (d3d^3), which has the extra stability of a half-filled t2g3t_{2g}^3 set — this favourable transition makes Cr2+Cr^{2+} a strong reducing agent. …

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