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Vermiculite

Industrial Minerals

Vermiculite

A mica-like mineral that unfolds into a concertina when heated, becoming light, fireproof and full of air.

Vermiculite board fireproofing 001.png · Achim Hering · CC BY 3.0 · Wikimedia Commons

What is it?

A mica-like mineral that unfolds into a concertina when heated, becoming light, fireproof and full of air.

Why does it matter?

Exfoliated vermiculite insulates, lightens concrete and holds water in potting compost. Historic contamination of one deposit with asbestos shaped the modern testing regime.

Where it is in the Earth

Vermiculite belongs to the phyllosilicate group of minerals — the same broad family as micas and clays, built from flat sheets of silicate tetrahedra bonded together. What distinguishes vermiculite is the way water molecules and exchangeable cations (positively charged atoms such as magnesium) are trapped between those sheets. When the mineral is heated rapidly, that interlayer water turns to steam and forces the sheets apart like the bellows of a concertina, expanding the particle to many times its original volume. This process is called exfoliation, and it is the property that makes vermiculite commercially interesting.

Deposits form where magnesium-rich igneous rocks — most often ultramafic rocks such as dunite, pyroxenite or peridotite, which originate deep in the Earth's mantle — have been chemically altered by hot, water-bearing fluids over long geological time. This alteration, known as hydrothermal or supergene weathering, converts the original minerals (particularly phlogopite mica and biotite) into vermiculite by introducing water and sometimes other elements into the crystal structure. The process requires the right combination of parent rock chemistry, percolating groundwater and, in many cases, prolonged tropical or subtropical weathering near the surface. This explains why the world's largest working deposits are found in southern Africa and Brazil, where ancient ultramafic bodies have been exposed to deep weathering over tens or hundreds of millions of years.

The ore bodies typically occur as irregular lenses, sheets or zones within or alongside the ultramafic parent rock, often associated with carbonatites (carbonate-rich igneous intrusions) or at the contact between mafic and felsic rocks. Grade — the proportion of true vermiculite mineral in the mined material — varies considerably within a single deposit, and the spatial distribution of high-grade zones tends to be complex. This makes resource estimation more demanding than for a simple, laterally continuous sedimentary deposit. The largest known reserves by published estimate sit in the United States, South Africa, Turkey and Brazil, though the reserve figures for several producing countries including Russia, Uganda and Zimbabwe are not available in the standard reporting.

Getting it out

Virtually all vermiculite is won by open-pit mining, sometimes called open-cast mining. The ore lies close enough to the surface that removing it with excavators and front-end loaders is far more practical than driving tunnels underground. Overburden — the soil and barren rock that sits on top of the ore — is stripped away first and stockpiled so that it can be used to rehabilitate the pit once mining is finished. The ore beneath is then drilled, blasted if it is competent rock, or simply dug if the weathering has left it soft and friable, which is common in tropical deposits.

Grade in this context means the proportion of vermiculite mineral in the run-of-mine ore. Because vermiculite deposits formed by weathering tend to be heterogeneous — pockets of rich ore mixed with barren host rock and altered material — the head grade (the average grade of everything that enters the processing plant) can vary considerably from one part of a pit to another. Selective mining, where diggers follow higher-grade zones and leave lower-grade material behind or blend it carefully, is common practice. The ratio of waste moved to usable concentrate produced is not a single fixed number; it depends on the deposit's geometry and the cut-off grade chosen, which in turn depends on the cost of processing and the value of the product.

Because exfoliation — the heating step that transforms the raw mineral into the light, expanded product — is straightforward and uses standard furnace equipment, it is often carried out close to the end customer rather than at the mine. This means the export product is typically a dried and sized raw concentrate, shipped in bulk or in bags by particle-size fraction, and the expansion happens at a plant closer to the construction site, horticulture supplier or factory that will use it. South Africa, the United States and Brazil are the principal producing countries, and the gap between South Africa's reserve position and its current output share suggests that production capacity rather than in-ground resource is the binding constraint at present.

What pulls on it

The single largest use of exfoliated vermiculite is in construction, where it appears as a lightweight aggregate in fireproofing sprays, insulating plasters and void-fill concrete. Its combination of low density, resistance to high temperatures and chemical inertness makes it useful wherever a material must not contribute to a fire. Attic insulation was historically a major market, though that segment contracted significantly after it emerged that ore from one particular deposit — Libby, Montana — was contaminated with asbestiform amphibole minerals. The legacy of that episode is a regulatory and reputational sensitivity to fibrous mineral contamination that now shapes testing requirements across the industry, and which made buyers far more cautious about loose-fill insulation applications in particular.

Horticulture is the other large and relatively stable demand category. Vermiculite holds water and air simultaneously within its expanded structure, making it useful in potting mixes and seed germination media where drainage and aeration need to be balanced. It is inert, sterile and pH-neutral, which suits applications where consistent growing conditions matter. This use is not closely tied to any single country's construction cycle, giving the mineral a degree of demand diversification that a purely construction-linked material would lack.

Smaller volumes go into friction materials (brake linings and clutch facings, where its heat resistance is the relevant property), as a carrier for agricultural chemicals, and into specialist refractory and high-temperature applications. For demand to shift sharply upward, there would need to be either a significant expansion in construction activity in markets that prefer vermiculite-based fireproofing, or adoption in a new application at scale. For demand to fall sharply, a broadly adopted substitute in horticulture or a change in construction fireproofing standards would be the most plausible drivers. Neither trajectory is predetermined by the current structure of the market.

Read the numbers correctly. Gross weight of concentrate. Concentrate by particle grade, exfoliated near the point of use.

Who produces it

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Mine production

Mine productionthousand metric tons 2025 (estimated) World total 460.0 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Gross weight of concentrate. · source ↗

Scroll the table sideways for the remaining columns.

CountryProduction Share of world
South Africa 160.0 34.8%
United States 100.0 21.7%
Brazil 50.00 10.9%
Russia 40.00 8.7%
China 40.00 8.7%
Zimbabwe 30.00 6.5%
Uganda 20.00 4.3%
Bulgaria 10.00 2.2%
Turkey 10.00 2.2%
India 2.00 0.4%
Uzbekistan 1.00 0.2%
Mexico s
World total 460.0100%

“Withheld” means the USGS suppressed the figure to avoid disclosing an individual company's data — it does not mean zero. Country rows do not always sum to the world total because the source rounds each figure independently and does not always break out an “other countries” line.

Who holds the reserves

“Reserves” is a strict word. It means the part of a known deposit that could be extracted economically right now, with today’s prices and today’s technology — not everything that exists in the ground. Reserves grow when prices rise or a new process is invented, and shrink when they fall.

Reserves

Reservesthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · source ↗

CountryReservesShare of world
United States 25,000
South Africa 14,000
Turkey 11,000
Brazil 6,600
China 2,900
India 1,600
Russia Not applicable
Bulgaria Not applicable
Mexico Not applicable
Uganda Not applicable
Uzbekistan Not applicable
Zimbabwe Not applicable
World total Not applicable100%

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