Question #a3715

1 Answer
Truong-Son N.
Jul 8, 2017

The question should say "which is more common", and that would be #"Mn"^(2+)# (such as in #"Mn"("OH")_2(s)#, or just as the #"Mn"^(2+)# free ion). Oxidation states are listed here.

The #4s# orbital of manganese is higher in energy, and so, the two #4s# electrons get ionized first.

#overbrace([Ar]3d^5 4s^2)^(stackrel(color(blue)(0))(Mn)) -> overbrace([Ar] 3d^5 4s^0)^(stackrel(color(blue)(+2))(Mn))#

Oxidation states are hypothetical charges from assuming full ionization, and manganese is a metal, to a good approximation, by ionizing manganese twice from the #4s# orbital, we generate #bb("Mn"^(2+))# as the more common oxidation state.

#"Mn"^(3+)# is not as favorable, because of the #3d# orbitals being lower in energy than the #4s# orbitals.

#overbrace([Ar]3d^5 4s^2)^(stackrel(color(blue)(0))(Mn)) -> overbrace([Ar] 3d^(color(red)(4)) 4s^0)^(stackrel(color(red)(+3))(Mn))#

The incoming atom would have to be particularly electronegative to allow a #+3# oxidation state to occur (such as in #"Mn"_2"O"_3(s)#), and if it is too electronegative, it could give rise to a #+4# (such as in #"MnO"_2(s)#) or #+7# (such as in #"MnO"_4^(-)(aq)#) oxidation state instead, which are also common.

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