이것은 무엇인가?
The best electrical conductor there is, and the metal that has been used as money for longer than almost anything else.
왜 중요한가?
Half of silver demand is industrial, and the fastest-growing piece is the paste that carries current off a solar cell.
Where it is in the Earth
Silver is a rare element, and the geological processes that concentrate it into mineable deposits are varied and often indirect. The most important of these is hydrothermal activity: hot, mineral-laden water moving through fractures in the crust, cooling as it rises, and depositing its dissolved metals in veins and replacement bodies. Silver frequently travels with lead, zinc, copper and gold in these fluids, which is why the ore minerals listed in the table — galena (lead sulfide), acanthite (silver sulfide) and native gold alloyed with silver as electrum — so often occur together in the same deposit. When those hydrothermal fluids encounter reactive carbonate rocks such as limestone, they can replace large volumes of the host rock entirely, creating the massive sulfide bodies that carry much of the world's silver.
The geological term for the most productive silver-bearing district type in history is epithermal, meaning the deposit formed at shallow depth and relatively low temperature. The volcanic belts that ring the Pacific Ocean — through Mexico, Peru, Bolivia and down into Chile — provided exactly the right conditions: recent volcanism supplying the heat, faulted and fractured rock providing the pathways, and thick sequences of sedimentary rock providing the reactive hosts. This is why Latin America dominates the production table so completely. A second, older deposit type is the sediment-hosted or Broken Hill-type orebody, formed when seafloor sediments were buried and metamorphosed, concentrating silver alongside lead and zinc. Australia's Cannington mine is a textbook example of this style. Poland's KGHM deposits belong to a third family: stratiform copper-silver mineralisation in Permian sedimentary rocks, where silver is intimately bound up with copper sulfides rather than lead.
Because silver follows these base metals so closely through geological history, truly primary silver deposits — where silver is the dominant metal rather than a companion — are the exception rather than the rule. The great Comstock Lode in Nevada, Cerro Rico in Bolivia and a handful of Mexican districts qualify, but most silver in the ground exists because lead, zinc, copper or gold happened to be there first. That geological reality has profound consequences for how silver is mined and priced, which the sections below address.
Getting it out
The method used to extract silver from the ground depends almost entirely on the primary metal the mine is really chasing. Because most silver is a by-product, it follows whatever extraction approach makes sense for lead, zinc, copper or gold. Large porphyry copper mines such as Escondida in Chile, Grasberg in Indonesia and Bingham Canyon in the United States operate as open-pit operations, moving enormous quantities of low-grade rock. The silver content in the ore at these mines is small per tonne, but the sheer scale of material processed means that collectively they contribute a significant portion of world supply. Open-pit mining suits these deposits because the ore is disseminated — spread through a large volume of rock — and stripping away the overlying waste to expose it is economically worthwhile only when the volumes mined are very large.
Underground mining is the right approach where ore is higher grade, narrower in geometry, or buried too deeply for an open pit to be practical. Cannington in Australia, which exploits a Broken Hill-type silver-lead-zinc orebody, operates underground. So does Olympic Dam, another Australian mine where silver appears alongside copper, uranium and gold in an iron-oxide copper-gold system. Underground methods recover less total rock but concentrate effort on the ore itself, which is why they suit richer or more complex deposits. Grade — the amount of silver per tonne of ore — is the number that determines which approach makes economic sense, and for a primary silver operation the threshold differs considerably from what a copper mine needs to find silver worth noting in its accounts at all.
What this means in practice is that the volume of waste rock moved per unit of silver produced varies enormously across the industry. A bulk open-pit copper mine produces silver almost as an afterthought, incurring no incremental mining cost for it. A primary silver underground mine must justify each metre of development entirely on the silver (and any associated lead or zinc). The by-product mines dominate total supply, and because their silver output is largely governed by decisions about copper, lead or zinc production, global silver mining volumes do not respond to silver prices in the straightforward way that a purely primary metal's supply would.
What pulls on it
Silver sits at an unusual intersection of monetary history and modern industry. For most of recorded history it functioned as currency, store of value and jewellery metal, and those uses persist: jewellery, silverware and investment (bars and coins) still account for a meaningful share of annual consumption. But the tables on this page show that industrial demand now accounts for roughly half of total use, and within that industrial share the fastest-growing application is the conductive paste printed onto the front face of crystalline silicon solar cells. That paste is the electrical pathway that carries current generated by the cell to the external circuit, and it is made from very fine silver powder. The intensity figure in the table — between 8 and 20 kilogrammes per megawatt of capacity — captures how much silver goes into a solar module, though the range is wide because cell designs differ and because the industry has been steadily reducing silver content per cell for years.
Beyond solar, silver's combination of the highest electrical conductivity of any element and good resistance to the formation of insulating oxides on its surface makes it the preferred contact material wherever reliable electrical switching matters: power-grid contactors and switchgear, automotive relays, consumer electronics. These applications tend to be mature and relatively stable in volume, contracting slowly as engineers find ways to use thinner layers or smaller contact areas. Medicine is a smaller but persistent market: silver's well-documented antimicrobial effect — bacteria cannot readily develop resistance to it in the way they do to antibiotics — keeps it in use in wound dressings and coatings for medical instruments. Nuclear power plants using pressurised-water reactor designs use a silver-indium-cadmium alloy in their control rods, a low-volume but highly specific application where substitution is tightly constrained by reactor licensing.
The direction of demand is therefore being pulled in two directions at once. Investment and jewellery demand fluctuates with economic sentiment and price expectations, and can swing sharply. Industrial demand is growing in aggregate because solar deployment is growing, but the solar industry is also systematically engineering silver out of each individual cell. Whether total solar-related silver consumption rises or falls over the coming years depends on which of those two forces — more modules installed versus less silver per module — runs faster. That tension is one of the genuinely unresolved questions in the silver market.
Turning ore into product 수준 3
Once ore is brought to surface, the first step is comminution — crushing and grinding the rock to liberate the silver-bearing minerals from the surrounding waste. The fineness to which ore must be ground depends on the grain size of the silver minerals and how intimately they are intergrown with the gangue (waste rock). After grinding, most silver-bearing sulfide ores go through froth flotation, a process in which air bubbles are passed through a slurry of finely ground ore and reagents; sulfide minerals attach to the bubbles and are collected as a concentrate, while the gangue sinks. The resulting concentrate — a product perhaps twenty to forty times richer in metal than the original ore — is then shipped to a smelter. Silver losses at the flotation stage are a persistent concern: finely disseminated silver or silver that is chemically bound within galena or sphalerite (zinc sulfide) rather than occurring as discrete acanthite grains may not float efficiently, and that silver goes to tailings.
At the smelter, sulfide concentrates are smelted at high temperature to produce a crude metal — copper anode or lead bullion, depending on the primary metal — with silver reporting to that metal phase rather than to the slag. The crude metal is then refined electrolytically. In a copper refinery, copper dissolves from the anode and deposits as pure cathode copper, while silver, gold and platinum-group metals accumulate in a slime on the anode floor. This anode slime is the silver refinery's feedstock: it is treated by a combination of hydrometallurgical steps (acid leaching, cementation, precipitation) and fire-refining to produce doré, an impure silver-gold alloy, which is then further refined to the 99.9% bars that trade on metal markets. The Atlantic Copper smelter in Huelva and the Guixi smelter in China represent this integrated smelter-refinery model, processing concentrates from multiple mines and recovering silver as a co-product stream alongside the primary metal.
For ores where silver occurs in a form that responds to leaching rather than flotation — particularly oxidised ores or certain epithermal deposits — heap leaching with cyanide solution or vat leaching can extract silver directly. The pregnant solution is then treated to precipitate silver, typically by the Merrill-Crowe process (adding zinc dust to cement silver and gold out of solution) or by carbon adsorption. Recovery rates from leaching oxidised silver ores are often lower than from flotation-smelting of fresh sulfide ores, and cyanide consumption rises sharply when certain minerals are present. The choice of flowsheet is therefore not a matter of preference but of ore mineralogy, and changing the flowsheet mid-life when ore character changes with depth is one of the more costly operational problems a silver-bearing mine faces.
Substitution and recycling 수준 3
The honest assessment of substitution for silver is that it is possible in nearly every application but comes at a measurable cost in performance, reliability or longevity in most of them. In electrical contacts, copper and its alloys can replace silver in lower-duty switching applications where the contact pressure is high and the arc energy is low, but copper oxidises more readily and the oxide layer is resistive, which causes problems in low-voltage, low-current circuits where a millivolt drop matters. Gold resists oxidation better than silver but costs considerably more per unit of electrical performance. Palladium-silver alloys occupy a middle ground used in automotive connectors. In each case the substitution decision is an engineering trade-off rather than a straightforward swap.
In solar cell paste, the industry has been working for well over a decade to reduce silver intensity by printing finer lines, using silver more efficiently in the paste formulation, or substituting copper for silver in cell designs that passivate the contact differently to prevent copper from poisoning the silicon. Some advanced cell architectures do use copper contacts, but they require additional processing steps and have not yet displaced silver-paste technology at scale. The pace of that transition will matter considerably to long-term silver demand, but it has proven slower and more technically demanding than early optimism suggested.
Recycling returns a significant fraction of silver to the market each year, predominantly from photographic materials (a declining stream as film use fell), electronic scrap, jewellery and silverware, and from the anode slimes produced by copper refineries. The recovery rate from identifiable industrial scrap streams — spent catalysts, plating baths, photographic fixer solutions — is relatively high because the silver concentration is sufficient to make collection economic. Recovery from diffuse end-uses, particularly from solar panels at end of life, is lower and will remain so until the volume of retired panels reaches a level that justifies dedicated recycling infrastructure at scale; that volume has not yet arrived. Silver in contacts and switches is often present in quantities too small to recover from individual components, and is lost during bulk electronic waste processing unless concentration steps are deliberately included.
암석 내 산출 위치
전체 광석 광물 →실제로 이를 함유하는 광물은 다음과 같다: silver. 광체(orebody)란 채굴 비용을 충당할 만큼 특정 광물이 충분히 농집된 광상을 말한다.

Acanthite (silver sulfide)
The main primary silver mineral, though most silver is recovered from lead-zinc and copper concentrates.

Galena
The main lead ore, and a principal carrier of silver — which is why most silver is a by-product.

Native Gold
Gold occurs as the metal itself, usually as microscopic grains locked in sulfide or quartz rather than as visible…
생산 주체
지도에서 보기 →Mine production
Mine productionmetric tons 2025 (추정치) 세계 합계 26,000 metric tons
USGS Mineral Commodity Summaries 2026 · Mine production of contained silver; most of it is a by-product of lead, zinc, copper and gold mining. · 출처 ↗
나머지 열을 보려면 표를 옆으로 스크롤하십시오.
| 국가 | 생산 | 세계 비중 |
|---|---|---|
| Mexico | 6,300 | 24.2% |
| Peru | 3,600 | 13.8% |
| China | 3,400 | 13.1% |
| Other countries | 2,100 | 8.1% |
| Bolivia | 1,500 | 5.8% |
| Chile | 1,400 | 5.4% |
| Poland | 1,300 | 5.0% |
| Russia | 1,200 | 4.6% |
| United States | 1,100 | 4.2% |
| Australia | 1,000 | 3.8% |
| Argentina | 800.0 | 3.1% |
| India | 800.0 | 3.1% |
| Kazakhstan | 630.0 | 2.4% |
| Sweden | 400.0 | 1.5% |
| Canada | 400.0 | 1.5% |
| 세계 합계 | 26,000 | 100% |
'비공개'는 USGS가 개별 기업의 데이터 노출을 막기 위해 수치를 억제한 것으로, 0을 의미하지 않습니다. 출처가 각 수치를 독립적으로 반올림하고 '기타 국가' 항목을 항상 별도로 구분하지는 않기 때문에, 국가별 합계가 세계 합계와 일치하지 않을 수 있습니다.
매장량 보유 주체
Reserves
Reservesmetric tons 2025
USGS Mineral Commodity Summaries 2026 · 출처 ↗
| 국가 | 매장량 | 세계 비중 |
|---|---|---|
| Peru | 110,000 | 18.0% |
| Russia | 92,000 | 15.1% |
| Australia | 91,000 | 14.9% |
| China | 67,000 | 11.0% |
| Poland | 59,000 | 9.7% |
| Other countries | 57,000 | 9.3% |
| Mexico | 37,000 | 6.1% |
| Chile | 33,000 | 5.4% |
| United States | 23,000 | 3.8% |
| Bolivia | 22,000 | 3.6% |
| India | 8,000 | 1.3% |
| Argentina | 6,500 | 1.1% |
| Canada | 4,900 | 0.8% |
| Kazakhstan | Not applicable | — |
| Sweden | Not applicable | — |
| 세계 합계 | 610,000 | 100% |
가격
bullion, average, dollars per troy ounce
연간 평균dollars per troy ounce
기준: bullion, average, dollars per troy ounce. 다음 자료에 게재된 연간 평균 USGS Mineral Commodity Summaries 2026 · 출처 ↗. 이 수치는 기준 연간 평균값이며, 실시간 시장 가격이 아니다.
이 소재를 생산하는 광산
전체 광산 →

Bingham Canyon
The largest excavation made by people.

Cerro Verde
One of the largest concentrator complexes in the world by throughput.

Collahuasi
Among the largest copper mines by output.

Escondida
Consistently the largest copper mine in the world by output.

Grasberg
One of the largest copper deposits and among the largest gold deposits ever mined.

Kalgoorlie Super Pit (Fimiston)
One of the largest open-pit gold mines in the world.

Olympic Dam
One of the largest single orebodies of any kind, holding copper, uranium, gold and silver together.

Oyu Tolgoi
Expected to become one of the largest copper mines in the world as the block cave ramps up.
처리·정련 지점
| 시설 | 종류 | 단계 | 국가 | 역할 |
|---|---|---|---|---|
| Atlantic Copper Smelter, Huelva | 제련소 | 가공 | Spain | 산출물 |
| Guixi Smelter | 제련소 | 가공 | China | 산출물 |
용도
전체 최종 시장 →| 최종 시장 | 거기에서의 기능 | 중요도 |
|---|---|---|
| Solar Power | Front-contact conductive paste | 정의 |
| Power Grids | Contacts and switchgear | 현재 |
| Nuclear Power | Control-rod alloy in some PWR designs | 현재 |
| Medicine & Health | Antimicrobial dressings | 현재 |
기술별 소요량
| 기술 | 수량 | 고시 가격 | 기준 |
|---|---|---|---|
| Crystalline Silicon Solar Module Falling with every generation of cell design. | 8.00–20.00 kg | per MW of capacity | Front-contact paste |
Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. 재료 계산기에서 임의의 규모로 이 수치를 계산하십시오. →
수출 통제
| 국가 | 지배력 | 적용 대상 |
|---|---|---|
| China | Export 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). ↗ |
| 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). ↗ |
| Venezuela | Export 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.