Q.Assign reason for each of the following :
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Start your 14-day free trial to unlock the full solution →The properties of transition metals are governed by their electronic configurations, variable oxidation states, and the stability of half-filled/filled d-subshells. Manganese shows +7 due to all 3d and 4s electrons being used; transition metals catalyse via variable oxidation states and surface adsorption; Cr²⁺ reduces while Mn³⁺ oxidises because of the stability of half-filled d⁵; Zn has low atomisation enthalpy due to its full d¹⁰ configuration; Cu⁺ disproportionates in water because Cu²⁺ has a higher hydration energy.
(i) Manganese exhibits the highest oxidation state of +7 among the 3d series
Concept: The maximum oxidation state a transition metal can show depends on how many electrons it can lose from both its 4s and 3d orbitals. Manganese has the electronic configuration .
Reasoning:
- Manganese can use all seven of its valence electrons (the two 4s electrons and all five 3d electrons) in bonding.
- This gives it an oxidation state of +7, as seen in compounds like (permanganate).
- No other 3d transition metal has this combination — for example, iron () can at most reach +6 (as in ferrate), and chromium () reaches +6.
- The +7 state is stabilised by the formation of strong -bonds with oxygen, which effectively removes electron density from the metal centre.
The +7 state in Mn is possible because the 3d and 4s orbitals are close in energy, allowing all seven electrons to participate. Compare this with halogens like chlorine, which also show +7 — but there the mechanism involves p-orbitals.
(ii) Transition metals and their compounds are generally good catalysts
Concept: Catalysis requires the ability to form temporary bonds with reactants and then release products. Transition metals excel at this due to two key features.
Reasoning:
- Variable oxidation states — A transition metal can change its oxidation state by ±1 or ±2 easily, allowing it to accept electrons from one reactant and donate them to another. For example, in the contact process for , cycles between V(V) and V(IV).
- Surface adsorption — In heterogeneous catalysis (e.g., iron in the Haber process), the metal surface provides a large number of active sites where reactant molecules are adsorbed, weakening their bonds and making reaction easier.
- The partially filled d-orbitals allow the formation of intermediate complexes with reactants, lowering the activation energy.
Do not confuse "catalyst" with "reagent" — a catalyst is not consumed in the overall reaction. The metal returns to its original oxidation state after the catalytic cycle.
(iii) is reducing while (same configuration) is oxidising
Concept: Both ions have the same d-electron count (), but their tendency to gain or lose electrons depends on the stability of the resulting configuration.
Reasoning:
- has configuration . It can easily lose one electron to become (), which is a half-filled set — a stable configuration. So acts as a reducing agent (it gets oxidised).
- also has , but it can gain one electron to become (), which is a half-filled d-subshell — exceptionally stable. So acts as an oxidising agent (it gets reduced).
(reducing)
(oxidising)
The key is to ask: "Which way leads to a half-filled or fully-filled d-subshell?" For Cr, the stable product is (half-filled ). For Mn, the stable product is (half-filled all d-orbitals).
(iv) Zinc has the lowest enthalpy of atomisation
Concept: Enthalpy of atomisation is the energy required to convert one mole of a solid metal into isolated gaseous atoms. It depends on the strength of metallic bonding.
Reasoning:
- In transition metals, metallic bonding involves the delocalisation of both 4s and 3d electrons. The more unpaired d-electrons available, the stronger the bonding.
- Zinc has the configuration — a completely filled d-subshell. …
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