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Doc Brown's chemistry notes on atomic and electron structure 8. Allotropes - definition - oxygen, carbon and sulfur examples explained and don't confuse with isotopes! [Author © Dr Phil Brown GRIC, PhD: Doc Brown's chemistry exam revision notes on examples of allotropes of oxygen, carbon and sulfur suitable for students of UK GCSE/A advanced level and international IGCSE/O/Advanced A level chemistry courses, ~US grades 9-12 chemistry notes [page updated RE-EDIT]email doc brown: query? comment? * [privacy policy, cookies & disclaimer] INDEX of atomic structure exam revision notes WHAT ARE ALLOTROPES? isotopes are atoms of the same element with different masses due to different numbers of neutrons in the nucleus. Same protons and electrons. e.g. atomic number 6 = 6 protons = carbon, but there can be 6, 7 or 8 neutrons giving isotopes of carbon–12, 13 or 14. They are NOT allotropes. Allotropes are defined as different atomic or molecular forms of the same element in the same physical state (gas, liquid or solid).
They may chemically similar, or different, but always physically different in some way e.g. The allotropes of oxygen
O2 (oxygen, dioxygen) and O3 (ozone, trioxygen) are both gases but have different densities, boiling points etc. oxygen–16, 17 or 18 are isotopes of oxygen with different nuclear structures due to different numbers of neutrons, but they behave chemically in an identical manner whether they are in an oxygen or ozone molecule. BUT O2 and O3 are different molecular structures of the same element in the same physical state and are called allotropes irrespective of the isotopes that make up the molecules.
The allotropes of carbon
The allotropes of sulfur
To summarise ... It doesn't matter which isotopes make up the structure of any of an element's allotropes described above, so to summarise by one example ...
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