암석에서 제품까지, 추적
The Materials Atlas
소재 광산 및 광상 가공 및 정제 인수인계 여정들 공급망 기업 국가 뉴스
분류별 소재 배터리 소재 희토류 원소 구리 및 전기 반도체 소재 핵 물질 항공우주 및 방위 귀금속 철강 및 합금 금속 산업용 광물 농업용 광물 에너지 원자재 광석 광물 주기율표
수요 최종 시장 기술 소재 계산기 지도 스크리너
학습 및 도구 학습용어집 데이터에 묻기AI 에이전트 조사 및 데이터API ★ 저장됨
소개 소개방법론 데이터 출처문의 면책 조항
읽기 옵션
🧭 안내 보기 광석 품위, 정광, 정제, 부산물 등의 용어가 생소하신가요? 탐색하는 동안 모든 용어를 쉬운 말로 설명해드립니다. 동일한 데이터에 도움말이 내장되어 있습니다.
⚡ 전문가 보기 업계 사정에 익숙한 이용자를 위한 뷰. 데이터만, 군더더기 없이, 빠르고 간결하게, 추가 설명 없이 제공된다. 기본 보기로 설정되어 있다.
테마
인터페이스 언어
심도 소재 페이지는 네 가지 수준으로 작성되어 있습니다. 소재 페이지에서 수준을 선택하면 해당 설정이 기억됩니다.
★ 저장됨 조사 및 데이터
Yttrium

희토류 원소 · Heavy rare earth

Yttrium Y · 39

Counted as a rare earth even though it sits elsewhere on the periodic table, because it behaves like one and is found with them.

Piece of Yttrium · Jan Anskeit · CC BY-SA 4.0 · Wikimedia Commons

이것은 무엇인가?

Counted as a rare earth even though it sits elsewhere on the periodic table, because it behaves like one and is found with them.

왜 중요한가?

Yttria-stabilised zirconia is the ceramic coating that lets a jet-engine turbine blade sit in gas hotter than the metal's own melting point.

Where it is in the Earth

Yttrium sits in an odd position in chemistry: it is not formally a lanthanide — the group of elements most people mean when they say "rare earths" — yet it behaves almost identically to them in its bonding and its size. That chemical resemblance is why yttrium ends up in the same rocks, in the same deposits, and in the same processing streams as the lanthanide rare earths. The periodic table places it above the lanthanides, but geology makes no meaningful distinction.

The element becomes concentrated in the Earth's crust through two quite different geological routes. The first is magmatic and hydrothermal: when silica-rich magmas cool slowly, late-crystallising phosphate minerals such as xenotime (yttrium phosphate, YPO₄) grow within the rock. Xenotime is chemically stubborn; it resists weathering far better than the surrounding silicate minerals, so it tends to accumulate in placer deposits — gravels and sands where rivers have sorted heavy, durable grains over long periods. The second route is weathering itself. In the deeply tropical, warm and wet conditions of southern China, granites that already contain trace concentrations of rare earths are chemically broken down over millions of years. The clay mineral kaolinite forms, and the rare-earth ions — including yttrium — are loosely adsorbed, meaning they cling electrostatically to the surface of the clay particles rather than being locked inside a crystal. These are the ion-adsorption clay deposits, and they are the world's dominant source of the heavier rare earths, among which yttrium is grouped by convention because of its similar ionic size.

The geography of these deposits explains much about the supply chain. Ion-adsorption clays are distributed across the weathered-granite provinces of southern China — Jiangxi, Guangdong, Fujian and neighbouring provinces. Because the enrichment process depends on a specific combination of parent-rock chemistry and prolonged tropical weathering, analogous deposits are rare elsewhere, though prospecting continues in parts of Southeast Asia, Madagascar and Brazil. Xenotime-bearing placers and hard-rock deposits exist in Malaysia, Australia and elsewhere, but their yttrium content and the economics of extracting it have generally made them secondary to the Chinese clay resource.

Getting it out

How yttrium is mined depends almost entirely on which of its two main ore types is being worked. Xenotime from hard-rock or placer deposits is recovered much like any heavy-mineral sand operation: the ore is dug or dredged, slurried with water, and passed over equipment that separates minerals by their different densities and surface properties. Xenotime, being dense, settles or concentrates preferentially, then goes forward for chemical treatment.

The ion-adsorption clay deposits of southern China work on a fundamentally different principle. The yttrium and other rare-earth ions are not locked inside a mineral grain; they are held loosely on clay surfaces by electrostatic attraction. This means they can be displaced using a solution — historically ammonium sulfate, though regulatory pressure has pushed operators toward other agents — that swaps a cheap, abundant ion for the rare-earth ion, releasing it into solution. This process is called in-situ leaching: rather than excavating the entire hillside, operators drill injection wells near the top of the weathered zone and pump the leaching solution in. The solution percolates downward through the clay, picks up the rare-earth ions, and is collected from drainage points at the base. The ore grade in these deposits is very low — the concentration of rare earths including yttrium is a small fraction of the rock by weight — but because the extraction method moves solution rather than rock, the waste-to-product ratio looks quite different from a conventional open-pit mine. The landscape is disturbed by injection infrastructure and drainage works rather than by vast spoil heaps, though the environmental footprint from residual leaching chemicals in groundwater has been a serious and documented problem in producing regions.

The practical consequence of low grade is that very large areas of weathered hillside must be treated to produce modest quantities of oxide. Production is diffuse, carried out by many small operators working different sections of the clay terrain, which has historically made it difficult to regulate uniformly. Chinese authorities have attempted consolidation of these operations into larger, more accountable entities, with mixed results over the years.

What pulls on it

Yttrium's end uses cluster around a small number of properties that are difficult to replicate with other elements. The most technically demanding application is as a stabiliser in zirconia ceramics. Pure zirconium oxide undergoes a disruptive crystal-structure change on heating and cooling, which would cause a ceramic part to crack in service. Adding yttrium oxide suppresses this transformation and produces what is called yttria-stabilised zirconia (YSZ), a material that remains dimensionally stable across very wide temperature swings. YSZ is the standard material for thermal barrier coatings on jet-engine turbine blades, where it insulates the metal from combustion gases hotter than the metal itself could survive. Demand here tracks the production and maintenance of gas turbines, both for aviation and for power generation.

A second historically important use is in phosphors — materials that absorb one wavelength of light and emit another. Europium-doped yttrium oxide and yttrium orthovanadate were essential components of the red phosphor in cathode-ray tube (CRT) televisions and computer monitors. The near-complete replacement of CRT displays by flat-panel technologies has removed a large portion of what was once a dominant demand stream. Phosphor demand persists in fluorescent and LED lighting applications, but the volumes are smaller and the compositions have shifted. This contraction in phosphor demand is a significant reason why yttrium's price history shows the kind of volatility visible in the data: the element moved from scarcity to relative surplus as CRT production collapsed.

Two areas represent growing demand. Solid-oxide fuel cells and solid-oxide electrolysers — devices that convert between electricity and hydrogen at high temperatures — use YSZ as their electrolyte, the layer through which oxygen ions migrate. As interest in hydrogen production and in high-efficiency distributed power grows, this application draws increasing attention. Yttrium also appears in certain laser gain media, notably yttrium aluminium garnet (YAG), used in industrial and medical lasers. Neither application is yet large enough individually to dominate the demand picture, but collectively they represent a shift toward energy and industrial technology rather than the consumer electronics base that shaped the market a generation ago.

수치를 올바르게 읽으십시오. Reported as yttrium oxide (Y2O3) equivalent. Oxide for ceramics, phosphors, lasers and superconductors.

암석 내 산출 위치

전체 광석 광물 →

실제로 이를 함유하는 광물은 다음과 같다: yttrium. 광체(orebody)란 채굴 비용을 충당할 만큼 특정 광물이 충분히 농집된 광상을 말한다.

mine production of Y2O3 equivalent contained in rare-earth mineral concentrates

mine production of Y2O3 equivalent contained in rare-earth mineral concentratesmetric tons 2025 (추정치) 세계 합계 12,500 metric tons

USGS Mineral Commodity Summaries 2026 · Reported as yttrium oxide (Y2O3) equivalent. · 출처 ↗

나머지 열을 보려면 표를 옆으로 스크롤하십시오.

국가생산 세계 비중
세계 합계 12,500100%

'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.

가격

average, dollars per kilogram: Yttrium metal, minimum 99.9% purity

연간 평균dollars per kilogram

2021 · 39.00 높음 41.00 dollars per kilogram 2025 · 40.00

기준: average, dollars per kilogram: Yttrium metal, minimum 99.9% purity. 다음 자료에 게재된 연간 평균 USGS Mineral Commodity Summaries 2026 · 출처 ↗. 이 수치는 기준 연간 평균값이며, 실시간 시장 가격이 아니다.

average, dollars per kilogram: Y2O3, minimum 99.999% purity

연간 평균dollars per kilogram

2021 · 6.00 높음 12.00 dollars per kilogram 2025 · 9.00

기준: average, dollars per kilogram: Y2O3, minimum 99.999% purity. 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 →
Southern China Ion-Adsorption Clays
Southern China Ion-Adsorption Clays, China — Historically the dominant world source of heavy rare earths. StateLibQld 2 153507 Aerial view of the work …, Public domain via Wikimedia Commons

Southern China Ion-Adsorption Clays →

처리·정련 지점

시설종류 단계국가역할
Aero-Engine Turbine Plant, Derby 제조 플랜트제품 United Kingdom투입물
Ganzhou Rare Earth Cluster 분리 플랜트정련 China산출물
최종 시장거기에서의 기능중요도
Aerospace & Defence Thermal barrier coatings 중요
Consumer Electronics Display phosphors and lasers 현재
Hydrogen & Electrolysis Solid-oxide cell electrolyte 현재

기술별 소요량

'집약도'란 어떤 제품 한 단위에 특정 소재가 얼마나 포함되는지를 나타냅니다. 여기에 제시된 수치는 참고 범위이며, 실제 설계는 제조사와 연식에 따라 다릅니다. 또한 엔지니어들이 사용량을 줄이는 방법을 익혀 가면서 모든 수치는 지속적으로 감소하고 있습니다.
기술수량 고시 가격기준
Single-Crystal Turbine Blade 미량 per blade setYttria-stabilised zirconia coating

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. 재료 계산기에서 임의의 규모로 이 수치를 계산하십시오. →

China’s Grip on Erbium and Yttrium Could Choke Data-Center Growth

IEEE Spectrum26 Aug 2026

소재

전체 소재 핵심 광물 희토류 배터리 소재 광석 광물 주기율표 스크리너

지하

광산 및 광상 가공 및 정제 국가 지도

경제

인수인계 여정들 공급망 최종 시장 기술 기업 소재 계산기

학습

학습용어집 데이터에 묻기AI 에이전트 조사 및 데이터공개 API 뉴스★ 저장됨

소개

소개문의 방법론데이터 출처 편집 방침 개인정보 처리방침이용 약관 면책 조항