Twelve mineral families
The chemistry underneath the folklore. Grouping stones by what they are rather than by how they look explains why amethyst and citrine are the same mineral, why emerald and aquamarine are the same mineral, and why a stone at hardness 3 should never go in a daily ring.
- 12
- families
- 60
- stones placed
- 2–10
- Mohs range
The twelve families
Each family page gives the chemistry, the members in this catalogue, the trade names to watch and the care rules that follow from the structure.
Quartz
The most abundant mineral family in the crust and the backbone of every crystal shop. One substance, a dozen trade names, separated by trace iron, radiation damage and inclusions.
Chalcedony & jasper
Quartz grown too fine to see, in fibres or grains. This is where banding, patterning and the whole world of carved seals and cameos comes from.
Beryl
One mineral wearing four famous names. Emerald, aquamarine, morganite and heliodor differ only in which trace metal coloured the crystal.
Corundum
Hardness 9, second only to diamond. Red corundum is ruby, every other colour is sapphire, and that naming split is a matter of trade rather than chemistry.
Feldspar & the feldspathoids
Sixty per cent of the crust, and the source of the flash stones. Moonstone and labradorite shimmer because of layering inside the crystal, not because of anything added.
The gem silicates
Garnet, peridot, topaz, iolite, tanzanite and kunzite. Chemically unrelated, grouped here because they are the classic faceted stones of the jeweller's tray.
Tourmaline & the layered silicates
Tourmaline is the most chemically complicated common gem; the micas and kyanite share its habit of growing in sheets and blades.
The carbonates
Malachite, azurite, rhodochrosite and calcite. Soft, often vividly coloured, frequently copper-bearing, and all of them dissolved by acid.
Evaporites & halides
Selenite, celestite and fluorite. Stones that crystallised out of drying water, which is why several of them will dissolve if you put them back in it.
The metallic ores
Hematite, pyrite and lodestone. Heavy, metallic, magnetic or shining, and the group whose observable behaviour generated the most folklore.
Greenstones & copper minerals
Jade, turquoise, chrysocolla, larimar and apatite. Grouped by how they were used rather than by chemistry, because whole civilisations organised around exactly this colour.
Carbons, glasses & organics
Diamond, shungite, obsidian, moldavite, opal, amber, jet and pearl. What the catalogue holds that is not a conventional crystal at all.
What a family tells you that a colour cannot
Grouping stones by chemistry is a modern habit, and it is the single most useful correction to the older way of working. Three things follow from it directly.
The first is identity. Amethyst, citrine, smoky quartz, rose quartz, tiger's eye, agate, carnelian, onyx, jasper and bloodstone are all silicon dioxide. They differ in trace iron, in radiation damage, in the size of the crystals and in what got trapped inside while they grew. A practice that assigns ten sharply distinct meanings to ten faces of one mineral is telling you about human perception rather than about matter, which is worth knowing while you use it.
The second is care. Structure predicts behaviour. Sulfates and halides crystallised out of drying water, so selenite dissolves and celestite crumbles. Carbonates fizz in acid, so malachite and rhodochrosite should never meet vinegar or a swimming pool. Sulfides oxidise, so pyrite decays in a humid room. None of this is mystical and all of it is preventable.
The third is honesty in the shop. Once you know that beryl covers emerald, aquamarine and morganite, you understand why a pale emerald and a deep aquamarine can look confusingly alike. Once you know that most bright citrine is heated amethyst and most blue topaz is irradiated, you stop paying rare-stone prices for common material.
How these twelve were drawn
Six of the families are real mineralogical groups: quartz, chalcedony, beryl, corundum, feldspar and the carbonates. Three are practical groupings by shared behaviour rather than by strict classification: the evaporites, the metallic ores, and tourmaline with the layered silicates. Three are groupings by how the stones were actually used: the gem silicates of the jeweller's tray, the greenstones and copper minerals that whole civilisations organised around, and the carbons, glasses and organics that are not conventional crystals at all.
Where a placement is a judgement call, the family page says so and gives the true chemistry. Nothing is hidden to keep the scheme tidy.
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