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Ionic Bonding

When atoms form ions, they try to fill up or empty their outer electron shell. In ionic bonding, a metal atom transfers electrons to a non-metal atom, allowing both of them (the metal and non-metal) to have a full outer electron shell.

Group 1 metals

Group 1 metals

  • Group 1 metals always lose 1 electron to form positive ions with a charge of +1.
    • E.g. a sodium atom (Na), with the electronic structure (2,8,1), loses its outer electron when forming an ion to make Na+.
Group 2 metals

Group 2 metals

  • Group 2 metals always lose 2 electrons to form doubly positive ions.
    • E.g. a magnesium atom (Mg), with the electronic structure (2,8,2), loses both its outer electrons when forming an ion to make Mg2+.
Non-metals (groups 6 & 7)

Non-metals (groups 6 & 7)

  • Non-metal atoms always gain electrons to form (become) negative ions.
    • E.g. a fluorine atom (F), with the electronic structure (2,7), will gain an electron when forming an ion to make F-.
Noble gases (Group 0)

Noble gases (Group 0)

  • Noble gases already have a full outer shell. Noble gases are unreactive and don't normally form ionic bonds with other elements.
Jump to other topics
1

States of Matter

2

Elements, Compounds & Mixtures

3

Atomic Structure

4

The Periodic Table

5

Chemical Formulae, Equations & Calculations

6

Bonding

7

Electrolysis

8

Groups of the Periodic Table

9

The Atmosphere

10

Reactivity Series

11

Metal Extraction

12

Acids & Alkalis

13

Chemical Tests

14

Physical Chemistry

15

Organic Chemistry

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