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Example · Example 7

Q.Why does scandium show only the +3+3 oxidation state, while manganese shows the widest range of oxidation states (+2+2 to +7+7) among the first-row transition metals?

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Scandium has the ground-state configuration [Ar]3d14s2[\text{Ar}]3d^14s^2: only three electrons lie outside the stable [Ar][\text{Ar}] core. Removing all three, to give Sc3+\text{Sc}^{3+}, empties the 3d3d subshell completely and restores the exceptionally stable, noble-gas-configured [Ar][\text{Ar}] core. Because there is no partially filled dd subshell left in Sc3+\text{Sc}^{3+} (it is d0d^0), and because the next ionization would have to break into the [Ar][\text{Ar}] core itself (an enormous energy cost), scandium has no accessible oxidation state other than +3+3.

Manganese, at the opposite extreme, has the ground-state configuration [Ar]3d54s2[\text{Ar}]3d^54s^2 -- seven electrons beyond the argon core, the maximum number of valence electrons available to any first-row transition metal in this simple counting sense. Each of these seven electrons can, in principle, be progressively removed or engaged in covalent bonding (particularly with oxygen, which stabilizes high oxidation states through π\pi-bonding, as discussed elsewhere in this chapter), giving rise to the full sequence of oxidation states +2+2 (losing just 4s24s^2), +3+3, +4+4, +5+5, +6+6, and finally +7+7 (engaging all seven valence electrons, as in MnO4−\text{MnO}_4^-). …

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