What is the electron configuration for #Fr#?

1 Answer
anor277
Aug 9, 2016

#[Rn]7s^1#

Explanation:

From the Periodic Table, #Z#, the atomic number of #Fr=87#

And thus,

#1s^(2)2s^(2)2p^(6)3s^(2)3p^(6)3d^(10)4s^(2)4p^(6)4d^(10)5s^(2)5p^(6)4f^(14)5d^(10)6s^(2)6p^(6)7s^1 #

Well, I have got 87 electrons there at least. Of course, all the action, all the chemistry takes place at #7s^1#, i.e. #Fr# is univalent and would react as an alkali metal. It is extremely rare element and gram quantities would be unknown.

Related questions
See all questions in Electron Configuration
Impact of this question
18812 views around the world
You can reuse this answer
Creative Commons License