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Silicon

Materiais para Semicondutores

Silicon Si · 14

The second-most-common element in the Earth's crust — ordinary sand — purified until only one atom in a billion is something else.

Wafer 20110212 · Sangitiana Fararano · CC BY-SA 2.0 · Wikimedia Commons

O que é?

The second-most-common element in the Earth's crust — ordinary sand — purified until only one atom in a billion is something else.

Por que razão é importante?

Every chip and almost every solar panel starts as a single silicon crystal. The purification, not the raw material, is the hard part.

Where it is in the Earth

Silicon is the second most abundant element in the Earth's crust, yet it almost never occurs in pure metallic form. In nature it bonds immediately with oxygen, forming silicon dioxide (quartz) and a broad family of silicate minerals that make up the bulk of common rocks — granite, sandstone, quartzite, and many others. The sheer prevalence of silicon-bearing rock is not, on its own, what makes a deposit worth mining. What matters is finding quartz that is both physically concentrated and chemically clean enough to feed a smelter without excessive pre-treatment.

The most useful deposits are high-purity quartzite — metamorphic rock in which ancient sandy sediments were compressed and recrystallised by heat and pressure deep in the crust over hundreds of millions of years. That metamorphic process can flush out many impurities, leaving behind masses of nearly pure silicon dioxide. Major deposits of this kind are found in Norway, Brazil, and parts of North America and Australia. A separate and more abundant source is unconsolidated silica sand, formed when quartz-rich rocks weather and the grains accumulate in river beds, beaches, and dunes. Sand is cheaper to extract but typically carries more iron, aluminium, and other contaminants that must be removed before the material can be smelted into silicon metal.

The geography of silicon production therefore reflects two separate things: where clean quartz happens to be concentrated by geology, and where cheap electricity is available to run the energy-intensive smelting furnaces. A country can have excellent quartzite and still not smelt much silicon if power costs are high, or it can import ore and smelt it locally if electricity is cheap. Norway and Iceland, for instance, exploit abundant hydroelectric power. China's dominance reflects a combination of domestic quartz resources, coal-powered electricity, and decades of deliberate industrial scaling.

Getting it out

Silicon metal starts life as mined quartz or quartzite, and in almost every case the mine is an open pit. The rock sits at or near the surface in large, coherent masses, which makes underground working unnecessary and uneconomic. Quartzite is blasted with explosives, loaded onto haul trucks, and crushed at a primary crushing plant near the pit. Because quartz is the target mineral rather than a trace metal dispersed through host rock, the ore grades are high — the material mined is predominantly the useful mineral itself. There is relatively little of what miners call waste rock, the barren material that must be moved but contains nothing saleable.

The practical challenge is not extracting enough silicon dioxide but extracting it at sufficient purity. Even a quartzite body that looks uniform to the eye will contain veins and pockets of feldspar, mica, iron oxides, and other minerals. Mining therefore involves selective extraction — working those parts of the deposit that assay below certain thresholds for iron, aluminium, calcium, and other elements that would degrade the final metal. Ore that fails purity tests may be stockpiled separately or sold to lower-grade markets such as the construction aggregate or glass industries. This selectivity means the effective yield from a given volume of rock is lower than the raw abundance of quartz would suggest.

Silica sand operations follow a different pattern. The unconsolidated sand is dredged or scraped from the surface with minimal blasting, then washed and classified by particle size. Because the starting purity is lower than quartzite, sand operations typically invest more heavily in wet processing — scrubbing, magnetic separation, and flotation — before the material leaves the mine site. The result is a product still well short of silicon metal purity, requiring smelting to go further.

What pulls on it

Silicon has two largely separate demand streams that happen to start from the same element. The first is metallurgical: steel and aluminium producers use ferrosilicon and silicon metal as alloying agents to harden metals and remove dissolved oxygen, and the chemical industry uses silicon metal as the feedstock for silicone polymers and silicon tetrachloride. These markets are large, mature, and tied broadly to construction activity, automotive production, and industrial output. They do not require ultra-high purity and they absorb the bulk of the silicon produced globally by volume.

The second stream is the electronics and energy transition market, which demands polysilicon and, ultimately, single-crystal wafers. Solar photovoltaic manufacturing has become the dominant growth driver here. A crystalline silicon solar module requires between 2,500 and 4,000 kg of polysilicon per megawatt of generating capacity — a substantial physical quantity that scales directly with the rate of solar installation. Semiconductor demand, by contrast, uses far smaller quantities of silicon by weight (a single 300 mm wafer weighs roughly 125 grams, and the silicon content of finished chips is a small fraction of that), but the value embedded in each kilogram is vastly higher and the purity requirements are far more exacting.

For silicon demand to shift sharply downward in electronics, chip architectures would need to migrate away from silicon substrates entirely — something the industry has pursued incrementally with materials such as gallium nitride and silicon carbide for specific power applications, but not at a scale that threatens silicon's overall volume. In solar, a move away from crystalline silicon toward thin-film alternatives would reduce polysilicon demand, but crystalline silicon retains strong efficiency and cost advantages that have kept its market share dominant. The clearer upward pressure on demand comes from continued solar deployment, electric vehicle power electronics, and data-centre expansion, all of which draw on different parts of the silicon supply chain simultaneously.

Leia os números corretamente. USGS silicon figures are silicon CONTENT of ferrosilicon plus silicon metal, not polysilicon. Metallurgical-grade silicon (~99%), then polysilicon (99.9999999%), then a grown ingot, then wafers.

Estes são os minerais que efetivamente transportam silicon. Um depósito só é um corpo de minério se um deles estiver concentrado o suficiente para justificar o custo de sua extração.

Quem o produz

Ver no mapa →
Mais de uma série é publicada para este material. O USGS reporta estes dados separadamente porque medem coisas diferentes — produção mineira e produção de refinaria, ou bases químicas distintas. São apresentados em tabelas separadas e nunca devem ser somados.

Ferrosilicon

Ferrosiliconthousand metric tons 2025 (estimado) Total mundial 5,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · USGS silicon figures are silicon CONTENT of ferrosilicon plus silicon metal, not polysilicon. · fonte ↗

Deslize a tabela lateralmente para ver as colunas restantes.

PaísProdução Partilha do mundo
China 3,500 70.0%
Russia 420.0 8.4%
Brazil 170.0 3.4%
Norway 150.0 3.0%
Other countries 140.0 2.8%
Kazakhstan 120.0 2.4%
Malaysia 120.0 2.4%
Bhutan 98.00 2.0%
Iceland 72.00 1.4%
India 59.00 1.2%
Spain 40.00 0.8%
South Africa 35.00 0.7%
Canada 23.00 0.5%
France 21.00 0.4%
United States Withheld
Australia Zero
Germany Zero
Total mundial 5,000100%

Silicon metal

Silicon metalthousand metric tons 2025 (estimado) Total mundial 4,600 thousand metric tons

USGS Mineral Commodity Summaries 2026 · USGS silicon figures are silicon CONTENT of ferrosilicon plus silicon metal, not polysilicon. · fonte ↗

Deslize a tabela lateralmente para ver as colunas restantes.

PaísProdução Partilha do mundo
China 4,000 87.0%
Brazil 180.0 3.9%
Norway 130.0 2.8%
France 68.00 1.5%
Australia 47.00 1.0%
Other countries 46.00 1.0%
Russia 35.00 0.8%
Canada 34.00 0.7%
Iceland 16.00 0.3%
Germany 13.00 0.3%
South Africa 10.00 0.2%
Kazakhstan 7.00 0.2%
Spain 4.00 0.1%
India Zero
Malaysia Zero
United States Withheld
Bhutan Zero
Total mundial 4,600100%

"Withheld" significa que o USGS suprimiu o valor para evitar divulgar dados de uma empresa individual — não significa zero. Os valores por país nem sempre somam o total mundial porque a fonte arredonda cada valor de forma independente e nem sempre discrimina uma linha de "outros países".

Preço

average, cents per pound of silicon: Silicon metal

Média anualcents per pound

2021 · 220.3 alto 361.9 cents per pound 2025 · 130.0

Base: average, cents per pound of silicon: Silicon metal. Médias anuais conforme publicadas em USGS Mineral Commodity Summaries 2026 · fonte ↗. Estas são médias anuais de referência, não uma cotação de mercado em tempo real.

average, cents per pound of silicon: Ferrosilicon, 75% silicon

Média anualcents per pound

2021 · 192.3 alto 312.1 cents per pound 2025 · 140.0

Base: average, cents per pound of silicon: Ferrosilicon, 75% silicon. Médias anuais conforme publicadas em USGS Mineral Commodity Summaries 2026 · fonte ↗. Estas são médias anuais de referência, não uma cotação de mercado em tempo real.

Onde é processado e refinado

PlantaTipo EtapaPaísFunção
Samsung Pyeongtaek Campus Fábrica de semicondutoresComponente South KoreaEntrada
TSMC Fab 18, Tainan Fábrica de semicondutoresComponente TaiwanEntrada
Hemlock Semiconductor Polysilicon Plant Instalação químicaRefinação United StatesEntrada
Xinjiang & Inner Mongolia Polysilicon Cluster Instalação químicaRefinação ChinaEntrada

Para que é utilizado

Todos os mercados finais →
Mercado finalO que faz aliImportância
Data Centres & AI Processors, memory and power conversion Definição de
Solar Power The cell itself Definição de
Semiconductors The wafer Definição de
Consumer Electronics Every chip Definição de
Robotics & Automation Controllers and sensors Definição de
Electric Vehicles Power electronics and anode additive Importante
Power Grids Grid-scale power electronics and HVDC valves Importante

Quanto uma tecnologia necessita

"Intensidade" significa simplesmente a quantidade de material que uma unidade de algo contém. Estes são intervalos indicativos — os projetos reais variam consoante o fabricante e o ano do modelo, e todos eles estão a diminuir à medida que os engenheiros aprendem a usar menos.
TecnologiaQuantidade CotadoBase
Crystalline Silicon Solar Module 2,500–4,000 kg per MW of capacityPolysilicon in the wafers
Gallium Nitride Power Device traço per deviceCommon substrate for GaN-on-Si
Leading-Edge Logic Chip 0.12–0.15 kg per 300 mm waferOne 300 mm wafer weighs about 125 g

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. Execute estes números em qualquer escala na calculadora de materiais →

Acompanhe-o através das fronteiras

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Para onde vai de facto uma remessa deste material — todos os países, todos os custódios e o que fica para trás em cada etapa.

A quarry in North Carolina to the chip in your phone The most valuable sand on Earth, and almost all of it comes from one small district. de United States · High-purity quartz sand, impurities measured in parts…

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