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Lithium

Battery Materials

Lithium Li · 3

A soft, silvery metal so light it floats on water, and the element that lets a rechargeable battery store a lot of energy for very little weight.

Spodumene Nuristan Créer le cristal · Marie-Lan Taÿ Pamart · CC BY 4.0 · Wikimedia Commons

What is it?

A soft, silvery metal so light it floats on water, and the element that lets a rechargeable battery store a lot of energy for very little weight.

Why does it matter?

Almost every phone, laptop and electric car on Earth runs on a lithium-ion battery. There is no drop-in replacement that matches it on energy per kilogram today.

Getting it out

Hard-rock lithium deposits, principally the spodumene pegmatites of Australia and southern Africa, are mined by open-pit methods. Miners remove the overlying rock — called overburden — expose the orebody, and extract it in benches cut down through the deposit. The proportion of waste rock moved for every tonne of ore recovered varies with the geometry of the deposit and how deeply it runs, but in any open-pit operation this stripping ratio is a significant part of the cost. The ore is then crushed and processed on site to produce a spodumene concentrate, a product containing around 6 percent lithium oxide (Li₂O) by weight. This concentrate is the form in which most Australian lithium leaves the country, travelling to chemical plants — predominantly in China — for further conversion.

Brine deposits work entirely differently. Operators drill wells into the salt flat and pump the lithium-bearing brine to the surface, where it is directed into a sequence of large, shallow evaporation ponds. Solar energy does most of the work: over many months, water evaporates and unwanted salts crystallise out, progressively concentrating the lithium. When the brine has been sufficiently enriched, it moves to a chemical plant for further purification and conversion into lithium carbonate or lithium hydroxide. The process is slow — a full evaporation cycle can take well over a year — and the large pond footprint means it uses considerable land area in ecosystems that are ecologically and hydrologically sensitive. More recently, direct lithium extraction (DLE) technologies, which use selective adsorbent or membrane materials to pull lithium from brine without lengthy evaporation, are being piloted at several sites, including at Salar del Hombre Muerto in Argentina. DLE promises faster processing and a smaller footprint, but most projects using it are not yet operating at full commercial scale.

The clay-hosted deposit at Thacker Pass in the United States involves open-pit mining followed by acid leaching of the crushed claystone — a process closer to hydrometallurgy than to conventional mineral processing. Because this deposit type is still at an early stage of commercial development, the practical performance of the full process at scale remains to be demonstrated under operating conditions.

What pulls on it

The dominant use of lithium today is in rechargeable batteries, and within that category the largest single application is the electric vehicle. Both of the main cathode chemistries in wide use — lithium iron phosphate (LFP) and nickel manganese cobalt oxide (NMC) — incorporate lithium as a functional element that shuttles between electrodes during each charge and discharge cycle. The material-intensity data on this page shows that a single 75 kWh battery pack requires several kilograms of contained lithium, meaning that each vehicle placed on the road represents a discrete, sizeable demand event. Consumer electronics — phones, laptops, tablets — also rely on lithium-ion cells, and grid-scale battery storage for electricity networks is a growing application as more intermittent renewable generation is added to grids.

Before the battery era, lithium's main markets were quite different: glass and ceramics (where it improves thermal properties), lubricating greases, air treatment, and pharmaceutical compounds. Those uses have not disappeared, but they have shrunk as a share of total demand as battery growth has outrun everything else. The practical consequence is that the lithium market's fortunes are now tightly coupled to the rate at which battery-powered vehicles and storage systems are adopted. If that adoption accelerated, demand would rise accordingly; if policy support for electric vehicles were withdrawn in major markets, or if a competing battery chemistry emerged that did not require lithium, the demand picture would change substantially. Neither the pace of adoption nor the development of alternative chemistries is fixed, which is what makes demand forecasting in this market genuinely uncertain.

It is worth noting that demand does not translate directly into lithium consumption without accounting for the efficiency of the manufacturing chain. Cathode production involves its own yield losses, and scrap generated within battery factories does not all return to the supply chain cleanly. The intensity figures are for finished packs, and the quantity of lithium that must actually be mined to deliver one finished pack is somewhat higher than those figures alone suggest.

Where it is in the Earth

Lithium is one of the lightest elements, and its very lightness is part of why it does not appear in concentrated form everywhere: it does not fit comfortably into the crystal structures of most common rock-forming minerals, so it tends to be left behind as magmas cool and solidify. Over geological time, that rejection causes it to accumulate in the last fractions of a cooling granite body, where water-rich fluids carry it into cracks and cavities. The resulting rock type is called a pegmatite — a coarse-grained igneous rock whose outsized crystals reflect the slow, fluid-assisted growth conditions. When the right combination of lithium, aluminium, and silicon is present, the mineral spodumene crystallises, and a mineable deposit can form. Geologists label the most lithium-rich class of these bodies LCT pegmatites, shorthand for the lithium, caesium, and tantalum that tend to travel together through these late-stage fluids. The Greenbushes and Pilgangoora deposits in Western Australia are among the best-known examples.

The other principal source is entirely different in character. In high, arid plateaux — most famously the Andean altiplano spanning Chile, Argentina, and Bolivia — ancient lake basins have been concentrated by millions of years of evaporation into vast salt flats called salares. Rainwater that falls on the surrounding volcanic highlands dissolves lithium from the rocks and carries it into these closed basins, from which there is no outlet to the sea. Evaporation removes the water but leaves the dissolved salts behind, including lithium at concentrations that can reach into the thousands of milligrams per litre in the subsurface brines beneath the salt crust. This is not ore in the conventional sense — it is a mineral-rich solution sitting in the pores of sediments below ground. The concentration of lithium in that brine, measured in milligrams per litre, is the brine-deposit equivalent of ore grade.

A third deposit type is drawing attention as exploration expands: lithium-bearing claystones formed from the alteration of volcanic ash in ancient lake beds. The Thacker Pass deposit in the United States belongs to this category. Clay-hosted lithium presents different metallurgical challenges from either pegmatite or brine, and the technology to process it at scale is still being proved commercially. Each deposit type therefore represents not just a different geological setting but a different set of engineering and environmental problems to solve.

Read the numbers correctly. USGS tonnages count CONTAINED LITHIUM METAL, not lithium carbonate. One tonne of lithium metal is about 5.32 tonnes of lithium carbonate (Li2CO3). Nobody ships lithium metal. The traded products are lithium carbonate and lithium hydroxide, plus spodumene concentrate at about 6% Li2O.
An LCT pegmatite
spodumene-bearing zone wall zone: quartz, feldspar, mica granite host rock surface
The last few percent of a cooling granite carries whatever would not fit into the ordinary minerals — lithium, caesium, tantalum. Water-rich fluid injects it into cracks, where it grows outsized crystals in distinct zones. Schematic. Dykes range from under a metre to tens of metres thick. Original diagram, The Materials Atlas.

Where it comes from in the rock

All ore minerals →

These are the minerals that actually carry lithium. A deposit is only an orebody if one of them is concentrated enough to pay for digging it up.

Who produces it

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Mine production

Mine productionmetric tons 2025 (estimated) World total 290,000 metric tons

USGS Mineral Commodity Summaries 2026 · USGS tonnages count CONTAINED LITHIUM METAL, not lithium carbonate. One tonne of lithium metal is about 5.32 tonnes of lithium carbonate (Li2CO3). · source ↗

Scroll the table sideways for the remaining columns.

CountryProduction Share of world
Australia 92,000 31.7%
China 62,000 21.4%
Chile 56,000 19.3%
Zimbabwe 28,000 9.7%
Argentina 23,000 7.9%
Brazil 12,000 4.1%
Mali 9,400 3.2%
Canada 5,600 1.9%
Portugal 380.0 0.1%
Other countries Zero
United States Withheld
World total 290,000100%

“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

Reservesmetric tons 2025

USGS Mineral Commodity Summaries 2026 · source ↗

CountryReservesShare of world
Chile 9,200,000 24.9%
Australia 8,400,000 22.7%
China 4,600,000 12.4%
United States 4,400,000 11.9%
Argentina 4,400,000 11.9%
Other countries 2,400,000 6.5%
Canada 1,600,000 4.3%
Brazil 540,000 1.5%
Zimbabwe 500,000 1.4%
Mali 370,000 1.0%
Portugal 60,000 0.2%
World total 37,000,000100%

Price

annual average-real, battery-grade lithium carbonate, dollars per metric ton

Annual averagedollars per metric ton

2021 · 11,700 high 63,700 dollars per metric ton 2025 · 9,000

Basis: annual average-real, battery-grade lithium carbonate, dollars per metric ton. Annual averages as published in USGS Mineral Commodity Summaries 2026 · source ↗. These are reference annual averages, not a live market quote.

Mines that produce it

All mines →
Goulamina
Goulamina, Mali — One of the mines behind Mali's sudden appearance in world lithium statistics. Open Pit Mines, Southern Arizona 2010-01-14 I…, Public domain via Wikimedia Commons

Goulamina →

Where it is processed and refined

PlantKind StageCountryRole
CATL Ningde Plants GigafactoryComponent ChinaInput
Gigafactory Nevada GigafactoryComponent United StatesInput
Kwinana Lithium Hydroxide Plant Chemical plantRefining AustraliaInput
Qinghai & Sichuan Lithium Chemical Cluster Chemical plantRefining ChinaInput

What it is used for

All end markets →
End marketWhat it does thereImportance
Electric Vehicles The cathode and electrolyte salt Defining
Consumer Electronics Battery Defining
Grid Storage Lithium-ion systems Defining
Power Grids Battery storage on the network Important
Robotics & Automation On-board battery Important

How much of it a technology needs

“Intensity” just means how much material one unit of something contains. These are indicative ranges — real designs vary by maker and model year, and every one of them is falling as engineers learn to use less.
TechnologyQuantity QuotedBasis
LFP Lithium-Ion Battery About 0.09 kg Li per kWh. 5.50–8.00 kg contained lithium per 75 kWh packContained metal
NMC Lithium-Ion Battery About 0.10 kg Li per kWh of cell capacity. 6.00–9.00 kg contained lithium per 75 kWh packContained metal, not carbonate

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. Run these numbers at any scale in the material calculator →

Export controls

CountryControlApplies to
ChinaExport licensing requirement for materials and technologies Antimony (2024), bismuth (2025), synthesized diamond (2025), gallium (2023), germanium (2023), graphite (2023), indium (2025), magnesium materials (2024), molybdenum (2025), rare earths (2025), silver (2026), tellurium (2025), tungsten (2025), and items related to lithium batteries and artificial graphite anode materials (2025).
NamibiaExport ban Ores and concentrates of cobalt, graphite, lithium, manganese, and rare earths (2023).
ZimbabweExport ban Lithium ore (2022).

USGS Mineral Commodity Summaries 2026, table 4 — controls in effect as of January 2026, excluding controls since lifted.

Follow it across the borders

All journeys →

Where a consignment of this material actually goes — every country, every custodian, and what is left behind at each step.

Australian spodumene to a battery, the fast way Eight weeks instead of eighteen months, at the cost of a great deal more energy. from Australia · Spodumene concentrate, 6% Li2O, from an LCT pegmatite Chilean brine to a battery in a car The ore is water. The first year and a half of processing is done by the sun, for free. from Chile · Salar brine, roughly 1,500–2,000 mg of lithium per litre

Traced supply chains

In the news

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