What is the electron configuration of ${Na}^{+}$ $"Na"^(+)$ ? How many paired electrons does it have?

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What is the electron configuration of ${Na}^{+}$ $"Na"^(+)$ ? How many paired electrons does it have?

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Answer 1 · 2017-09-02T15:08:40

Well, the typical ion that sodium (Na) forms, as an alkali metal (first column in the periodic table) is a $+ 1$ $+1$ cation.

As a neutral atom, its electron configuration was:

$[N e] 3 s^{1}$ $[Ne] 3s^1$

As a $+ 1$ $+1$ ion, its electron configuration involves one less valence electron, giving it a noble gas core electronic structure:

$[N e]$ $[Ne]$

Or in longer-hand notation:

$color(blue)ul(1s^2 2s^2 2p^6)$

All "noble gas cores" have all electrons paired. We say that $"Na"^(+)$ is isoelectronic with (having the same electronic structure as) $"Ne"$ .

Therefore, all the electrons in $bb("Na"^(+))$ are paired.

(I'll leave it as an exercise for you to count how many electrons are paired from the electron configuration given by $1s^2 2s^2 2p^6$ . Hint: It's no more than $11$ .)

I hope that helps!

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What is the electron configuration of ${Na}^{+}$ $"Na"^(+)$ ? How many paired electrons does it have?

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What is the electron configuration of "Na"^(+)Na+"Na"^(+)? How many paired electrons does it have?

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What is the electron configuration of ${Na}^{+}$ $"Na"^(+)$ ? How many paired electrons does it have?