Question

What is the complete electron configuration of copper(I) ion?

Answer 1

`[Ar]3d^10` or `1s^2\2s^2\2p^6\3s^2\3p^6\3d^10`

Explanation:

A copper(I) ion is basically a copper ion with an oxidation state of `+1`, i.e. it will become `Cu^+`.

Copper has an electron configuration of `[Ar]3d^10\4s^1`.

That means, its full electron configuration will be

`1s^2\2s^2\2p^6\3s^2\3p^6\3d^10\4s^1`.

When it loses that `1` electron, it no longer needs the `4s` orbital, and therefore its electron configuration becomes

`1s^2\2s^2\2p^6\3s^2\3p^6\3d^10`.

We can also simplify that into just `[Ar]3d^10`.