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Tellurium

半导体材料

Tellurium Te · 52

A brittle, silvery element recovered from the slime at the bottom of a copper refinery tank, and the basis of one of the two commercial thin-film solar technologies.

Tellurium crystals · Hi-Res Images of Chemical Elements · CC BY 3.0 · Wikimedia Commons

这是什么?

A brittle, silvery element recovered from the slime at the bottom of a copper refinery tank, and the basis of one of the two commercial thin-film solar technologies.

为何重要?

Cadmium telluride panels are the main non-silicon solar technology in production, and their scale is capped by how much tellurium copper refining yields.

Where it is in the Earth

Tellurium is one of the rarest stable elements in the Earth's crust, and it does not form ore deposits of its own in any economically meaningful sense. Instead, it concentrates through the same hydrothermal processes that form copper and gold deposits. When hot, metal-rich fluids move through fractures in the crust, they carry trace quantities of tellurium alongside copper, lead, gold, and silver. As those fluids cool, tellurium precipitates — that is, it drops out of solution and bonds with other metals to form telluride minerals such as calaverite (a gold telluride) and tetradymite (a bismuth telluride). These minerals are found in porphyry copper deposits, which are large, low-grade bodies of mineralised rock formed by cooling magma, and in epithermal gold deposits, which form closer to the surface from lower-temperature fluids.

The connection to copper is the key fact for understanding where tellurium comes from. Porphyry copper deposits are the world's dominant source of mined copper, and they are distributed along the great volcanic arcs of the Pacific Rim and the Andes, as well as across parts of Central Asia. Wherever those deposits are being processed, tellurium travels with the copper through smelting and refining, eventually concentrating in the residues of the refining tankhouse. It is worth noting that the tellurium content of any given copper deposit is highly variable and often very low; it follows the copper rather than accumulating in one place on its own terms. There are no commercially operating primary tellurium mines — mines where the sole target is tellurium — anywhere in the world.

Some gold-telluride deposits, such as those that made Kalgoorlie in Australia historically notable, contain enough tellurium to be geologically interesting, but the volumes recovered are small relative to what copper refining yields. The geography of tellurium supply is therefore not really the geography of tellurium geology; it is the geography of copper smelting and refining capacity, which has shifted heavily toward China over the past few decades.

Getting it out

Because tellurium has no mines of its own, it is not mined in the conventional sense. It arrives at a refinery as an invisible passenger inside copper anodes — large slabs of impure copper cast at a smelter and then dissolved electrochemically in a refining tankhouse. In electrorefining, the anode is slowly eaten away by an electric current, and pure copper deposits on a cathode plate opposite it. The impurities that were locked in the anode — selenium, tellurium, silver, gold, platinum-group metals, and others — do not dissolve cleanly. They fall to the bottom of the tank as a sludge called anode slime. Recovering tellurium means collecting and processing that slime.

The grade of tellurium in copper, meaning how many grams of tellurium are present per tonne of copper, varies considerably depending on the deposit the ore came from. Some ores carry relatively more, others carry almost none. Because the grade is low and the tellurium is bound up with many other elements in a complex sludge, a great deal of copper must be refined before a meaningful quantity of tellurium accumulates. The ratio of waste to product is therefore enormous, though from tellurium's perspective the copper is not really waste — it is the primary product of a process that tellurium merely accompanies. This by-product status is what makes tellurium supply so structurally unusual: it cannot be increased simply by drilling more holes or opening a new mine. Production is gated by copper refining throughput and by whether a given refinery has the downstream equipment to extract tellurium from its slimes at all.

What pulls on it

The single largest use of tellurium is in cadmium telluride thin-film solar panels. In this technology, a very thin layer of cadmium telluride semiconductor — the layer that actually absorbs sunlight and converts it to electricity — is deposited onto glass. The material intensity of this process, meaning how much tellurium is needed per unit of generating capacity, sits between 25 and 60 kilograms per megawatt of capacity, depending on layer thickness and manufacturing efficiency. As solar manufacturing has scaled up, the absolute quantity of tellurium consumed by this sector has grown accordingly. Whether demand grows further depends heavily on how much cadmium telluride capacity is built relative to other solar technologies, particularly conventional crystalline silicon, which uses no tellurium at all.

Outside solar, tellurium is used in metallurgy — chiefly as a small additive to free-machining steels and copper alloys, where it improves how the metal cuts and finishes. Thermoelectric devices, which convert a temperature difference directly into electricity or use electricity to pump heat, rely on bismuth telluride compounds and represent a smaller but technically distinct demand stream. These non-solar uses have been relatively stable over time and are not strongly tied to the energy transition.

A sharp increase in demand would require either a major expansion of cadmium telluride solar manufacturing, a new application that consumes tellurium in comparable quantities, or both. A sharp decrease would most likely follow a technological shift away from cadmium telluride in the solar industry, or a significant reduction in the tellurium intensity of the cells themselves through thinner absorber layers. Both directions of change are physically plausible, which is part of what makes tellurium an unusual material to analyse.

正确读取数据。 Refinery production; almost entirely a by-product of copper electrorefining anode slimes. Metal, dioxide, and CdTe compound for thin-film modules.
该材料已发布多个系列。 USGS 将这些数据分开报告,因为它们衡量的是不同事项——矿山产量与精炼厂产量,或不同的化学基准。它们以独立表格呈现,切勿将其合并相加。

Refinery production

Refinery productionmetric tons 2025 (估计值) 全球合计 1,000 metric tons

USGS Mineral Commodity Summaries 2026 · Refinery production; almost entirely a by-product of copper electrorefining anode slimes. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
China 800.0 80.0%
Russia 67.00 6.7%
Japan 61.00 6.1%
Canada 28.00 2.8%
Uzbekistan 18.00 1.8%
South Africa 5.00 0.5%
Bulgaria 1.00 0.1%
Other countries Not applicable
全球合计 1,000100%

Refinery production: concentrate

Refinery production: concentratemetric tons 2025 (估计值)

USGS Mineral Commodity Summaries 2026 · Refinery production; almost entirely a by-product of copper electrorefining anode slimes. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
Sweden 48.00

Refinery production: copper telluride

Refinery production: copper telluridemetric tons 2025 (估计值)

USGS Mineral Commodity Summaries 2026 · Refinery production; almost entirely a by-product of copper electrorefining anode slimes. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
United States Withheld

"未披露"表示美国地质调查局(USGS)为避免泄露单个企业数据而对该数字进行了保密处理——并不意味着数值为零。各国行数之和不一定等于世界合计,原因在于来源对每个数字单独进行四舍五入处理,且并不总是单独列出"其他国家/地区"一行。

价格

annual average, dollars per kilogram: United States

年度平均值dollars per kilogram

2021 · 69.72 高 120.0 dollars per kilogram 2025 · 120.0

基准: annual average, dollars per kilogram: United States. 年度平均值,来源: USGS Mineral Commodity Summaries 2026 · 来源 ↗. 以下为参考年度均价,非实时市场报价。

annual average, dollars per kilogram: Europe

年度平均值dollars per kilogram

2021 · 67.26 高 150.0 dollars per kilogram 2025 · 150.0

基准: annual average, dollars per kilogram: Europe. 年度平均值,来源: USGS Mineral Commodity Summaries 2026 · 来源 ↗. 以下为参考年度均价,非实时市场报价。

其加工与精炼地点

工厂类型 阶段国家/地区角色
Guixi Smelter 冶炼厂加工 China产出
终端市场其在彼处的用途重要性
Solar Power Cadmium-telluride thin-film cells 重要

某项技术的需求用量

"强度"是指单位产品所含某种材料的用量。此处为参考区间——实际用量因制造商和年型而异,且随着工程师不断探索减量化设计,所有数值均呈下降趋势。
技术数量 报价基准
Cadmium Telluride Thin-Film Module Scale is limited by copper-refining by-product supply. 25.00–60.00 kg per MW of capacitySemiconductor layer

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. 在物料计算器中按任意规模运行这些数据 →

出口管制

国家/地区管控适用于
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).

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

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这批材料实际经过的路线——每个国家、每位托管方,以及每个环节留下的内容。

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. 来自 Chile · Chalcopyrite concentrate from a porphyry, roughly 0.5%…

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