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Copper

Copper & Electrical Materials

Copper Cu · 29

The reddish metal that carries electricity better than anything except silver, and which humans have been smelting for about 7,000 years.

Chalcopyrite botroïdale · Didier Descouens · CC BY-SA 3.0 · Wikimedia Commons

What is it?

The reddish metal that carries electricity better than anything except silver, and which humans have been smelting for about 7,000 years.

Why does it matter?

Every kilowatt-hour generated has to travel down copper. Grids, motors, data centres, buildings and vehicles all compete for the same refined metal.

Where it is in the Earth

Where it is in the Earth

Copper is one of the more abundant metals in the Earth's crust, but it is almost never concentrated enough to mine in its natural, dispersed state. What makes a copper deposit is a geological process that gathered the metal from large volumes of rock and deposited it in a much smaller volume over millions of years. The most important of these processes produces what geologists call a porphyry copper deposit. The word porphyry describes a type of igneous rock — rock that solidified from magma — in which large crystals are set inside a finer-grained mass. When magma rises towards the surface and begins to cool, water and other hot fluids are expelled. Those fluids scavenge copper from the surrounding rock, travel along fractures, and eventually deposit sulfide minerals — principally chalcopyrite, a compound of copper, iron and sulfur — as conditions change. The result is a very large, low-grade body of mineralised rock. Porphyry deposits account for the great majority of the world's mined copper, and they explain why Chile, Peru and parts of the American Southwest — all sitting on or near the ancient collision zone where the Pacific oceanic plate has driven under the South American and North American continents — hold so much of the world's reserves.

A second important deposit type is the sediment-hosted stratiform deposit, where copper minerals were laid down in ancient sedimentary basins, probably by metal-bearing brines circulating through porous rock. The Congolese Copperbelt and the Zambian Copperbelt formed this way, and they tend to carry higher grades than porphyries, with a different mix of ore minerals including bornite and chalcocite alongside chalcopyrite. A third type, found at Norilsk in Russia and Sudbury in Canada, is the magmatic sulfide deposit, formed when copper, nickel and other metals separated from a cooling magma body and settled together. These are typically mined as much for nickel or platinum-group metals as for copper itself. The common thread in all cases is that geological time and energy — heat, pressure, fluid movement — did the work of concentration that makes mining economically feasible.

Near the surface, many copper sulfide deposits are chemically altered by weathering. Rainwater carrying oxygen and weak acids reacts with sulfide minerals, dissolves the copper, and redeposits it lower in the profile as very high-grade secondary minerals — chalcocite and bornite in the sulfide zone, and carbonates such as malachite in the oxide zone above the water table. This process is called supergene enrichment, and it explains why some deposits have a rich cap of oxide ore sitting above a lower-grade primary sulfide body. The oxide and sulfide portions require different processing routes, which has practical consequences at the mine.

Getting it out

Getting it out

Because porphyry copper deposits are very large and typically low-grade — ore grades of roughly 0.3 to 1 percent copper are normal — they are almost always mined by open pit methods. Open pit mining involves removing rock from a progressively deepening pit, blasting it loose in benches, and loading it onto trucks or conveyors. The defining feature of this approach is the sheer volume of waste. For every tonne of ore that carries copper, several tonnes of waste rock — material too lean to process — must be moved and stored somewhere. The ratio of waste to ore, called the strip ratio, varies by deposit but is often substantial; as a pit deepens over decades, the strip ratio tends to rise, increasing energy and haulage costs per tonne of copper recovered. Open pit mines are among the largest human-made structures on Earth for exactly this reason.

Underground mining becomes the preferred option when the orebody is deep, when the surface topography makes an open pit impractical, or when the ore is high-grade enough to justify the greater cost of driving tunnels and shafts. El Teniente in Chile, the world's largest underground copper mine, uses a technique called block caving: miners undercut a large block of rock, which then collapses under its own weight and is drawn off through tunnels below. Block caving can move very large tonnages at relatively low cost per tonne once established, but it requires long lead times to prepare and cannot be easily accelerated. Some deposits, like Oyu Tolgoi in Mongolia, use both open pit and underground methods at different stages of their life.

A distinct extraction route applies to oxide copper ores. Rather than crushing and concentrating the rock, operators heap it onto lined pads and irrigate it with dilute sulfuric acid. The acid dissolves the copper out of the rock, and the resulting copper-rich solution is then processed through a two-stage electrochemical system — solvent extraction followed by electrowinning, universally abbreviated SX-EW — to produce copper cathode directly, without passing through a smelter. This route is well suited to arid regions where water is scarce, since the acid solution is largely recycled, and it avoids the sulfur dioxide emissions associated with smelting sulfide ores. Morenci in Arizona is a large example. However, SX-EW cathode cannot easily carry the by-product credits — gold, silver, molybdenum — that make sulfide concentrate economics attractive, because those metals do not dissolve in the acid leach.

What pulls on it

What pulls on it

Copper is bought primarily because it conducts electricity. Its electrical conductivity is exceeded only by silver, which is far scarcer and more expensive, so copper has been the default conductor in almost every electrical application for well over a century. Construction — the wiring inside buildings — has historically been the largest single end-use, and it remains very large. Industrial machinery, power generation and transmission, and transport have always competed alongside it. None of these uses are going away; replacing the wiring in existing buildings alone represents a continuing, replacement-driven demand that is largely independent of economic cycles.

What has changed the shape of demand in recent years is the scale of electrification underway in energy and transport. The material-intensity figures in the database illustrate the point concretely: a direct-drive offshore wind turbine requires between 3,000 and 8,000 kilograms of copper per megawatt of capacity, a photovoltaic solar installation between 2,000 and 4,000 kilograms per megawatt, and a pressurised water reactor between 1,000 and 2,000 tonnes per gigawatt. Electric vehicles carry copper in their motor windings, battery current collectors, busbars and charging infrastructure. Data centres, whose power consumption has risen sharply with the expansion of computing capacity for artificial intelligence workloads, require dense copper wiring in busbars, power distribution and network cables. All of these are applications where growth in the installed base translates directly into demand for new copper, not merely replacement copper.

For demand to change sharply in a downward direction, one of a small number of things would have to be true: a viable, affordable substitute would have to emerge at scale in one or more of the high-volume applications; electrification programmes would have to slow or reverse; or economic growth in the regions that build and wire the most infrastructure would have to stall for an extended period. For demand to exceed what current supply capacity can deliver, the current pace of energy transition and data-infrastructure build-out would need to be sustained while new mine supply takes the time it typically requires to come online.

Read the numbers correctly. Mine production is contained copper in concentrate or cathode; refinery production is finished cathode. Adding the two double-counts. Concentrate (~25-30% Cu) from the mine, then blister, then 99.99% cathode, then rod and wire.
A porphyry copper system, in cross-section
open pit leached and oxide cap supergene enrichment — the richest zone primary sulfide: chalcopyrite in fractures the intrusion that drove it 0 m~300 m ~1 km
A body of magma cools a few kilometres down, cracks the rock above it, and drives metal-bearing fluids up through the fractures. The result is a huge, low-grade volume rather than a rich vein — which is why porphyry mines are enormous open pits. Schematic. Real systems are 1–5 km across and the zones grade into each other rather than sitting in neat bands. Original diagram, The Materials Atlas.

Where it comes from in the rock

All ore minerals →

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

Who produces it

See it on a map →
More than one series is published for this material. The USGS reports these separately because they measure different things — mine output and refinery output, or different chemical bases. They are shown as separate tables and must never be added together.

Mine production

Mine productionthousand metric tons 2025 (estimated) World total 23,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Mine production is contained copper in concentrate or cathode; refinery production is finished cathode. Adding the two double-counts. · source ↗

Scroll the table sideways for the remaining columns.

CountryProduction Share of world
Chile 5,300 23.0%
Congo (Kinshasa) 3,200 13.9%
Other countries 3,000 13.0%
Peru 2,700 11.7%
China 1,800 7.8%
Russia 1,300 5.7%
United States 1,000 4.3%
Zambia 940.0 4.1%
Australia 730.0 3.2%
Kazakhstan 710.0 3.1%
Indonesia 710.0 3.1%
Mexico 690.0 3.0%
Canada 500.0 2.2%
Poland 410.0 1.8%
India 23.00 0.1%
Korea, Republic of Zero
Germany Zero
Japan Zero
World total 23,000100%

Refinery production

Refinery productionthousand metric tons 2025 (estimated) World total 29,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Mine production is contained copper in concentrate or cathode; refinery production is finished cathode. Adding the two double-counts. · source ↗

Scroll the table sideways for the remaining columns.

CountryProduction Share of world
China 14,000 48.3%
Congo (Kinshasa) 2,800 9.7%
Other countries 2,100 7.2%
Chile 1,700 5.9%
Japan 1,400 4.8%
Russia 950.0 3.3%
United States 850.0 2.9%
India 620.0 2.1%
Korea, Republic of 610.0 2.1%
Germany 610.0 2.1%
Poland 560.0 1.9%
Kazakhstan 500.0 1.7%
Mexico 480.0 1.7%
Australia 460.0 1.6%
Indonesia 400.0 1.4%
Peru 340.0 1.2%
Canada 320.0 1.1%
Zambia 270.0 0.9%
World total 29,000100%

“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

Reservesthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · source ↗

CountryReservesShare of world
Other countries 210,000 21.4%
Chile 180,000 18.4%
Australia 100,000 10.2%
Peru 85,000 8.7%
Russia 80,000 8.2%
Congo (Kinshasa) 80,000 8.2%
Mexico 53,000 5.4%
United States 47,000 4.8%
China 41,000 4.2%
Poland 33,000 3.4%
Indonesia 21,000 2.1%
Zambia 21,000 2.1%
Kazakhstan 20,000 2.0%
Canada 7,000 0.7%
India 2,200 0.2%
Japan Zero
Germany Zero
Korea, Republic of Zero
World total 980,000100%

Price

Copper, global price

Annual averageUS$ per tonne

1995 · 3,003 high 13,552 US$ per tonne 2026 · 13,543

Basis: IMF global price of copper — grade A cathode, LME/COMEX/NYMEX average. Annual averages as published in FRED (IMF primary commodity prices) · source ↗. These are reference annual averages, not a live market quote.

annual average, cents per pound: London Metal Exchange, grade A, cash

Annual averagecents per pound

2021 · 422.5 high 440.0 cents per pound 2025 · 440.0

Basis: annual average, cents per pound: London Metal Exchange, grade A, cash. Annual averages as published in USGS Mineral Commodity Summaries 2026 · source ↗. These are reference annual averages, not a live market quote.

annual average, cents per pound: COMEX, high-grade, first position

Annual averagecents per pound

2021 · 424.3 high 480.0 cents per pound 2025 · 480.0

Basis: annual average, cents per pound: COMEX, high-grade, first position. Annual averages as published in USGS Mineral Commodity Summaries 2026 · source ↗. These are reference annual averages, not a live market quote.

annual average, cents per pound: U.S. producer, cathode (COMEX + premium)

Annual averagecents per pound

2021 · 432.3 high 490.0 cents per pound 2025 · 490.0

Basis: annual average, cents per pound: U.S. producer, cathode (COMEX + premium). 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 →
Bingham Canyon
Bingham Canyon, United States — The largest excavation made by people. Bingham Canyon Mine (1) - Salt Lake County, U…, CC BY 4.0 via Wikimedia Commons

Bingham Canyon →

Where it is processed and refined

PlantKind StageCountryRole
CATL Ningde Plants GigafactoryComponent ChinaInput
Gigafactory Nevada GigafactoryComponent United StatesInput
Samsung Pyeongtaek Campus Semiconductor fabComponent South KoreaInput
TSMC Fab 18, Tainan Semiconductor fabComponent TaiwanInput
Atlantic Copper Smelter, Huelva SmelterProcessing SpainInput
Guixi Smelter SmelterProcessing ChinaInput
Nadezhda Metallurgical Plant SmelterProcessing RussiaOutput
Port of Rotterdam Bulk Terminals PortProcessing NetherlandsInput
Wind Turbine Nacelle & Blade Plants, Jutland Manufacturing plantProduct DenmarkInput
Jinchuan Group Smelter-Refinery RefineryRefining ChinaOutput

What it is used for

All end markets →
End marketWhat it does thereImportance
Electric Vehicles Current collectors, motor windings, busbars and charging Defining
Power Grids Cables, windings and busbars Defining
Data Centres & AI Power distribution, busbars and network cable Defining
Wind Power Generator windings, nacelle wiring and export cable Defining
Solar Power Ribbon, wiring and inverters Defining
Construction & Steel Wiring and plumbing Defining
Semiconductors On-chip interconnect Defining
Consumer Electronics Boards, coils and wiring Defining
Robotics & Automation Motor windings and wiring Defining
Hydrogen & Electrolysis Power delivery at very high current Defining
Grid Storage Collectors and connection Defining
Nuclear Power Generator and switchyard 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
Alkaline Electrolyser 400.0–1,200 kg per MW of capacityPower delivery
Crystalline Silicon Solar Module 2,000–4,000 kg per MW of capacityWiring, ribbon and inverter
Direct-Drive Offshore Wind Turbine Offshore is far higher than onshore. 3,000–8,000 kg per MW of capacityGenerator, nacelle and array cabling
EV Traction Motor 8.00–20.00 kg per motorStator windings
HVDC Transmission Cable 20.00–120.0 t per km of circuitConductor, subsea designs at the high end
LFP Lithium-Ion Battery 15.00–25.00 kg per 75 kWh packFoil and busbars
NMC Lithium-Ion Battery 15.00–25.00 kg per 75 kWh packFoil and busbars, cell and pack only
PEM Electrolyser 500.0–1,500 kg per MW of capacityVery high-current power delivery
Pressurised Water Reactor 1,000–2,000 t per GW of capacityGenerator, transformers and plant wiring
Vanadium Redox Flow Battery 1.00–3.00 t per MWh of storageStack and power conversion

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
IndonesiaExport ban Bauxite (2023), copper concentrates (2023), and nickel ore (2020).
LaosExport ban Raw minerals, including copper, gold, iron, nickel, potassium, silver, and zinc (2024).
MoroccoExport licensing requirement Copper (refined and alloys) and aluminum ingots (2025).
TanzaniaExport ban Ore concentrates of copper, gold, nickel, and silver (2017).
VenezuelaExport ban Bauxite, cassiterite, columbite-tantalite, copper, gold, rhodium, silver, and thorium (2024).

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.

Chilean sulfide concentrate to Chinese cathode to a wire Chile mines the most copper in the world. China refines the most. Those are not the same sentence. from Chile · Chalcopyrite concentrate from a porphyry, roughly 0.5%… Congolese oxide ore to finished cathode, without a smelter When the ore is oxide, acid will do what a smelter would otherwise have to. from Democratic Republic of the Congo · Oxide and mixed copper ore of the Central African…

Traced supply chains

In the news

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