Group 0: The Noble Gases
Aligned to the AQA 8462 specification
- Level
- Intermediate
- Reading time
- 5 min
- Published
- 2 July 2026
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Key takeaways
- The noble gases in Group 0 are very unreactive because their atoms have a stable arrangement of electrons: a full outer shell (eight outer electrons, except helium which has two).
- Because their outer shells are already full, noble gas atoms have no tendency to lose, gain or share electrons, so they do not easily form molecules or compounds.
- Boiling points of the noble gases increase down the group as the relative atomic mass increases, from helium at the top to radon at the bottom.
- The noble gases exist as single atoms (they are monatomic), unlike most non-metal elements which exist as molecules.
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Key terms
- Noble gas
- An unreactive element in Group 0 of the periodic table whose atoms have a full, stable outer shell of electrons.
- Full outer shell
- An outer electron shell holding its maximum number of electrons (eight, or two for helium), giving a stable arrangement.
- Monatomic
- Existing as single, separate atoms rather than as molecules; the noble gases are monatomic.
Frequently asked questions
Noble gases are unreactive because their atoms already have a stable, full outer shell of electrons: eight outer electrons, except helium which has two. With a full outer shell they have no tendency to gain, lose or share electrons, so they rarely react.
Boiling point increases down Group 0 as the relative atomic mass increases. Helium at the top has the lowest boiling point and radon at the bottom the highest, so you can predict a missing value by continuing the trend.
Helium has two outer electrons, not eight. Its only shell holds a maximum of two, so it is full with two. Every other noble gas has eight outer electrons, and all of them count as a stable, full outer shell.
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