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Q.Out of the following transition elements, the maximum number of oxidation states are shown by (A) Sc (Z = 21) (B) Cr (Z = 24) (C) Mn (Z = 25) (D) Fe (Z = 26)

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The element that can lose the most electrons from both its 3d3d and 4s4s orbitals shows the maximum number of oxidation states. Manganese (Mn) with seven valence electrons exhibits oxidation states from +2+2 to +7+7, the most among the given options.

Why oxidation states vary across transition elements

Transition metals are unique because they can lose different numbers of electrons from their valence shell—both the outermost ss orbital and the penultimate dd orbitals participate in bonding. The number of accessible oxidation states depends on how many of these electrons can be removed without requiring prohibitive energy.

The key insight: an element shows maximum oxidation states when it has the most electrons available for removal before reaching a particularly stable configuration (like a half-filled or empty dd subshell). Early in the 3d3d series, as we add electrons one by one, the maximum possible oxidation state increases—until we reach manganese, which has exactly seven valence electrons that can all be removed.

Let's examine each candidate systematically.

Step-by-step analysis

1. Scandium (Sc, Z=21Z = 21): Configuration [Ar] 3d14s2[\text{Ar}] \, 3d^1 4s^2

Scandium has only three valence electrons. It readily loses all three to form Sc3+\text{Sc}^{3+}, achieving the stable noble-gas configuration of argon.

Common oxidation states: +3+3 (dominant), occasionally +2+2 and +1+1 in specialized compounds.

That's essentially two to three oxidation states, with +3+3 being by far the most stable.

2. Chromium (Cr, Z=24Z = 24): Configuration [Ar] 3d54s1[\text{Ar}] \, 3d^5 4s^1

Chromium's half-filled dd subshell gives it special stability, but it can still access multiple oxidation states by losing different numbers of electrons.

Common oxidation states: +2+2 (loses both 4s4s and one 3d3d), +3+3 (common), +4+4, +5+5, and the famous +6+6 in chromates (CrO42−\text{CrO}_4^{2-}) and dichromates.

That gives roughly five distinct oxidation states (+2,+3,+4,+5,+6+2, +3, +4, +5, +6).

3. Manganese (Mn, Z=25Z = 25): Configuration [Ar] 3d54s2[\text{Ar}] \, 3d^5 4s^2

Manganese has seven valence electrons—five in the 3d3d and two in the 4s4s. This is the sweet spot: it can lose anywhere from two electrons up to all seven without immediately hitting a closed-shell barrier.

Common oxidation states: +2+2 (very common, Mn2+\text{Mn}^{2+}), +3+3, +4+4 (in MnO2\text{MnO}_2), +5+5, +6+6 (in manganates, MnO43−\text{MnO}_4^{3-}), and +7+7 (in permanganates, MnO4−\text{MnO}_4^-).

That's six distinct oxidation states (+2,+3,+4,+5,+6,+7+2, +3, +4, +5, +6, +7), the maximum in the first transition series. …

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