Qu'est-ce que c'est ?
A silvery metal that resists rust, which is why it goes into stainless steel — and, more recently, into the cathodes that give an EV its range.
Pourquoi est-ce important ?
Two-thirds of nickel still goes into stainless steel, but the battery share is what moved the market: raising nickel in a cathode raises the energy the cell can hold.
Where it is in the Earth
Nickel reaches minable concentrations through two quite different geological processes, which is why the deposits look nothing like each other and require very different methods to extract. The first process is magmatic: when molten rock rich in iron, magnesium and sulfur cools slowly deep in the crust, nickel tends to follow sulfur and iron into droplets of liquid sulfide that sink through the magma and pool at the base of the intrusion. When that melt eventually solidifies, the result is a sulfide ore body — rock threaded with the mineral pentlandite — carrying nickel grades that the data here put at roughly one to three percent by weight. The great sulfide camps of Sudbury in Canada and Norilsk-Talnakh in Russia formed this way, though Sudbury has the additional distinction of having been shaped or at least reprocessed by a meteorite impact, which concentrated the sulfides further.
The second process is entirely at the surface. When ancient ultramafic rocks — the same iron- and magnesium-rich rock types that host sulfide deposits — are exposed to prolonged tropical weathering over millions of years, water slowly dissolves and carries away much of the magnesium and silica. Nickel, being less mobile, is left behind and gradually enriches in the remaining clay and oxide minerals near the surface. The result is a laterite deposit: a broad, shallow blanket of reddish or greenish saprolite and limonite that can extend over a large area but carries nickel in a fundamentally different mineralogical form, mainly in the silicate garnierite or locked into iron oxide minerals. Indonesia sits on one of the world's largest accumulations of these laterised ultramafic rocks, which is why it now accounts for so large a share of world output.
The distinction between sulfide and laterite is not merely geological curiosity. Sulfide ores tend to occur at depth and in discrete bodies, making them amenable to selective underground mining and relatively straightforward concentration by flotation. Laterite ores are widespread, near-surface and fine-grained, which makes them harder to concentrate by physical means and generally requires either smelting or hydrometallurgical leaching — processes that consume considerably more energy per tonne of nickel produced. Where a deposit sits on the geological spectrum between these two end-members shapes almost every subsequent decision in the supply chain.
Getting it out
Sulfide nickel deposits are typically mined underground, because the ore bodies are narrow, steeply dipping and located at considerable depth. Miners drive tunnels to reach the ore zone and use methods such as cut-and-fill or blasthole stoping — essentially carving out large underground chambers — to extract the rock. The ore grades associated with sulfide deposits, running around one to two percent nickel, sound low, but because so much of the unwanted rock (called gangue) can be left underground or managed as tailings after milling, the economics can work well. The Norilsk-Talnakh complex in Russia and the Sudbury Basin in Canada are the canonical examples of this type.
Laterite deposits are a different matter. Because the enriched material forms a near-surface blanket, it is usually stripped by open-pit methods: overburden is removed, and the ore is excavated in horizontal benches. The Sorowako operation in Indonesia follows this pattern. The trade-off is that laterite ore is bulky and low-grade relative to the energy needed to process it, so very large volumes of material move through the system for each tonne of nickel recovered. There is no clean separation step equivalent to flotation: the nickel is dispersed through the clay and oxide minerals in a way that only heat or acid can release.
Grade matters in practice because it determines the ratio of waste to product at every stage. A mine processing ore at one percent nickel must handle a hundred tonnes of rock to obtain one tonne of contained metal, and most of those hundred tonnes must be moved, crushed, processed and disposed of. For laterite operations, the processing waste — whether slag from a smelter or tailings from a pressure-acid-leach plant — is substantial in volume and must be managed carefully to prevent environmental contamination, particularly because laterite processing often involves strong acids or high-pressure steam.
What pulls on it
Nickel's demand story has two quite separate chapters that are sometimes conflated. The older and larger chapter is stainless steel. Stainless steel is an alloy of iron, chromium and nickel in which the nickel stabilises a particular crystalline structure (the austenite phase) that gives the steel its combination of formability and corrosion resistance. Around two-thirds of all nickel consumed goes into this application, and that fraction has remained broadly stable for decades. Stainless steel production tends to follow construction activity, industrial output and consumer goods manufacturing, so nickel demand from this sector tracks general economic conditions rather than any specific technology transition.
The newer chapter is batteries. Nickel-manganese-cobalt (NMC) cathode chemistries, which dominate much of the electric vehicle market, use nickel as the primary active material. Raising the nickel share of the cathode increases the energy density — the amount of electricity the cell can store per kilogram — which in turn extends the range a vehicle can travel on a single charge. This is why battery manufacturers have progressively moved towards higher-nickel formulations. The intensity figures in the table on this page quantify what that means in practice: an NMC pack of the size typical for a mid-range electric vehicle contains between 40 and 60 kilograms of contained nickel. Multiply that by the number of vehicles being produced and the arithmetic makes clear why battery demand has become the part of the nickel market that attracts the most attention.
Beyond steel and batteries, nickel appears in superalloys used in the hot sections of aircraft engines, in alloys for nuclear steam generators, and in the electrodes of alkaline electrolysers used to produce hydrogen. These are smaller in volume than stainless steel but often require high-purity material and are less price-sensitive, so they carry disproportionate weight in discussions of supply adequacy. What would have to change for demand to shift sharply? On the battery side, a sustained move toward lithium iron phosphate (LFP) cathode chemistry — which contains no nickel at all — would reduce growth in battery demand. On the stainless side, a prolonged slowdown in global industrial output would reduce the base load. Neither of these is a certainty; they are simply the main variables that would alter the trajectory.
D'où cela vient dans la roche
Tous les minéraux de minerai →Ce sont les minéraux qui portent réellement nickel. Un gisement n'est un corps minéralisé que si l'un d'eux est suffisamment concentré pour rentabiliser son extraction.

Garnierite (nickel laterite)
A green nickel silicate from tropically weathered rock. Laterite ore is soft and shallow but needs high-pressure acid…

Pentlandite
The main nickel sulfide ore mineral, and the host that also carries most by-product platinum-group metals.
Qui le produit
Voir sur une carte →Mine production
Mine productionmetric tons 2025 (estimé) Total mondial 3,900,000 metric tons
USGS Mineral Commodity Summaries 2026 · Tonnages are contained nickel. Grades differ enormously: sulfide ore may run 1-2% Ni, laterite ore under 1.5%. · source ↗
Faire défiler le tableau latéralement pour afficher les colonnes restantes.
| Pays | Production | Part mondiale |
|---|---|---|
| Indonesia | 2,600,000 | 66.7% |
| Other countries | 290,000 | 7.4% |
| Philippines | 270,000 | 6.9% |
| Russia | 200,000 | 5.1% |
| Canada | 140,000 | 3.6% |
| New Caledonia | 140,000 | 3.6% |
| China | 120,000 | 3.1% |
| Brazil | 70,000 | 1.8% |
| Australia | 45,000 | 1.2% |
| United States | 10,000 | 0.3% |
| Total mondial | 3,900,000 | 100% |
« Withheld » signifie que l'USGS a supprimé le chiffre afin de ne pas divulguer les données d'une entreprise individuelle — cela ne signifie pas zéro. La somme des lignes par pays ne correspond pas toujours au total mondial, car la source arrondit chaque chiffre de manière indépendante et ne détaille pas toujours une ligne « autres pays ».
Qui détient les réserves
Reserves
Reservesmetric tons 2025
USGS Mineral Commodity Summaries 2026 · source ↗
| Pays | Réserves | Part mondiale |
|---|---|---|
| Indonesia | 62,000,000 | 44.3% |
| Australia | 25,000,000 | 17.9% |
| Brazil | 16,000,000 | 11.4% |
| Other countries | >9,100,000 | 6.5% |
| Russia | 8,300,000 | 5.9% |
| New Caledonia | 7,100,000 | 5.1% |
| Philippines | 4,800,000 | 3.4% |
| China | 4,400,000 | 3.1% |
| Canada | 2,200,000 | 1.6% |
| United States | 340,000 | 0.2% |
| Total mondial | >140,000,000 | 100% |
La source publie ce total mondial comme une valeur encadrée plutôt que comme un chiffre précis ; les parts figurant dans la dernière colonne sont donc elles-mêmes des bornes.
Prix
Nickel, global price
Moyenne annuelleUS$ per tonne
Base: IMF global price of nickel — melting grade, LME spot. Moyennes annuelles telles que publiées dans FRED (IMF primary commodity prices) · source ↗. Il s'agit de moyennes annuelles de référence, et non de cotations de marché en temps réel.
average annual, London Metal Exchange (LME), cash: Dollars per metric ton
Moyenne annuelledollars per metric ton
Base: average annual, London Metal Exchange (LME), cash: Dollars per metric ton. Moyennes annuelles telles que publiées dans USGS Mineral Commodity Summaries 2026 · source ↗. Il s'agit de moyennes annuelles de référence, et non de cotations de marché en temps réel.
average annual, London Metal Exchange (LME), cash: Dollars per pound
Moyenne annuelledollars per pound
Base: average annual, London Metal Exchange (LME), cash: Dollars per pound. Moyennes annuelles telles que publiées dans USGS Mineral Commodity Summaries 2026 · source ↗. Il s'agit de moyennes annuelles de référence, et non de cotations de marché en temps réel.
Mines qui le produisent
Toutes les mines →

Sorowako
One of Indonesia's long-established integrated nickel operations.

Sudbury Basin
One of the longest-producing nickel districts on Earth.

Mogalakwena
The largest open-pit platinum-group metals mine in the world.
Où c'est traité et raffiné
| Usine | Type | Étape | Pays | Rôle |
|---|---|---|---|---|
| Gigafactory Nevada | Gigafactory | Composant | United States | Intrant |
| Indonesia Morowali Industrial Park | Fonderie | Traitement | Indonesia | Production |
| Nadezhda Metallurgical Plant | Fonderie | Traitement | Russia | Production |
| Aero-Engine Turbine Plant, Derby | Usine de fabrication | Produit | United Kingdom | Intrant |
| Huayou Cobalt Refineries | Usine chimique | Affinage | China | Intrant |
| Jinchuan Group Smelter-Refinery | Affinerie | Affinage | China | Production |
| Rustenburg Base & Precious Metals Refineries | Affinerie | Affinage | South Africa | Intrant |
À quoi cela sert
Tous les marchés finaux →| Marché final | Ce qu'il fait là-bas | Importance |
|---|---|---|
| Electric Vehicles | Raises the energy the cathode can hold | Définition de |
| Aerospace & Defence | Superalloy for hot sections | Définition de |
| Hydrogen & Electrolysis | Alkaline electrolyser electrodes | Définition de |
| Nuclear Power | Alloys for steam generators | Important |
Quelle quantité en nécessite une technologie
| Technologie | Quantité | Coté | Base |
|---|---|---|---|
| Alkaline Electrolyser | 300.0–800.0 kg | per MW of capacity | Electrodes and catalyst coatings |
| NMC Lithium-Ion Battery NMC811 cathode is roughly 0.7 kg Ni per kWh. | 40.00–60.00 kg | per 75 kWh pack | Contained nickel |
| Pressurised Water Reactor | 500.0–1,500 t | per GW of capacity | Steam generators and alloy components |
| Single-Crystal Turbine Blade Typically 60% or more of the alloy. | trace | per blade set | Superalloy base |
Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. Appliquer ces chiffres à n'importe quelle échelle dans le calculateur de matériaux →
Contrôles à l'exportation
| Pays | Contrôle | S'applique à |
|---|---|---|
| Indonesia | Export ban | Bauxite (2023), copper concentrates (2023), and nickel ore (2020). ↗ |
| Laos | Export ban | Raw minerals, including copper, gold, iron, nickel, potassium, silver, and zinc (2024). ↗ |
| Tanzania | Export ban | Ore concentrates of copper, gold, nickel, and silver (2017). ↗ |
USGS Mineral Commodity Summaries 2026, table 4 — controls in effect as of January 2026, excluding controls since lifted.
Suivez-le au fil des frontières
Tous les parcours →Où va réellement un lot de ce matériau — chaque pays, chaque dépositaire, et ce qui est perdu à chaque étape.
Indonesian laterite to a battery cathode A country that banned raw ore exports and built the processing industry instead. New Caledonian laterite to stainless steel An island that smelts its own ore, and pays for it with the most expensive electricity in the industry.
