市場調查報告書
商品編碼
1471242
稀土元素市場:按產品、類型和應用分類 - 2024-2030 年全球預測Rare Earth Elements Market by Product (Oxides/ Ore, Pure/ Extracted Metals), Type (Cerium Oxide, Dysprosium Oxide, Europium Oxide), Application - Global Forecast 2024-2030 |
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預計2023年稀土元素市場規模為77.6億美元,2024年將達88.2億美元,2030年將達193.8億美元,複合年成長率為13.94%。
稀土元素是元素週期表中鑭系元素中的金屬元素,與鈧和釔一起。這些元素由於其特殊的磁性、磷光和催化特性而極為重要。它也是推動和維持清潔能源技術、電子、國防、製造和醫藥等領域全球創新的重要因素。技術創新正在推動智慧型手機和電動車等高科技應用和產品對稀土元素的需求。此外,支持清潔能源和國防領域的政府投資和政策正在推動對這些元素的需求。然而,供應集中在少數國家可能會導致市場和價格不穩定,而與這些元素的開採和加工相關的環境問題可能會阻礙市場成長。然而,更有效、更永續探索和提取以及開發具有成本效益的回收製程的技術改進預計將為市場創造成長前景。
主要市場統計 | |
---|---|
基準年[2023] | 77.6億美元 |
預測年份 [2024] | 88.2億美元 |
預測年份 [2030] | 193.8億美元 |
複合年成長率(%) | 13.94% |
產品:稀土氧化物(REO)是稀土元素化合物。
稀土氧化物 (REO) 是氧化形式的稀土元素(稀土)的化合物。這些氧化物是從稀土礦石中提取的,例如氟碳鈰礦、獨居石和磷釔礦。這些礦石含有各種稀土元素的複雜混合物,包括鑭、鈰和釔。稀土元素氧化物被用作許多高科技應用的重要原料,包括催化、玻璃拋光、陶瓷和冶金,以及作為進一步精製和製造金屬和合金的前驅物。純的或提取的稀土元素是指從其氧化物或礦石狀態中分離和精製的稀土元素的形式。這些金屬透過溶劑萃取、還原和電解等冶金過程分離。應用範圍包括清潔能源,包括強永磁體的生產、航太和軍事設備用金屬合金、電池、電子產品、混合動力汽車和電動汽車馬達以及風力發電機發電機的生產。
類型:增加氧化鏑的採用,提高高溫下的抗退磁能力
氧化鈰,俗稱二氧化鈰,是最豐富的稀土元素氧化物之一。氧化鈰有多種用途,包括作為玻璃和半導體的拋光劑、作為汽車排氣系統的催化劑以及作為燃料電池的氧化催化劑。氧化鏑是製造釹基磁鐵的關鍵材料,對於電動車和風力發電機中使用的高性能馬達至關重要。氧化銪主要用作電視和螢光中的紅色磷光體。由於其發光特性,這種化合物在某些雷射和其他光電設備的生產中至關重要。氧化钆在醫學影像處理中用於增強 MRI 影像,因為钆化合物用作顯影劑。氧化鑭是精製中的重要催化劑,由於其吸收紫外線的能力,也可用於製造相機和望遠鏡鏡頭等特殊玻璃。氧化釹是生產 NdFeB 永久磁鐵的重要成分,該永久磁鐵用於各種高科技應用,例如馬達和發電機。它也用作玻璃染料和陶瓷著色。氧化镨用於製造飛機引擎的高強度金屬,也是玻璃和搪瓷中重要的著色顏料。氧化釤在玻璃工業中用來製造吸收紅外線輻射的特殊玻璃和陶瓷。鋱用作固體和螢光中的磷光體,並與氧化銪一起用於三色照明。它也應用於各類電子元件和感測器。氧化釔用於穩定陶瓷中的氧化鋯並製造釔鐵石榴石(一種高效的微波過濾器)。
應用:使用不斷演化的稀土元素作為催化劑
稀土元素廣泛用作各種工業製程的催化劑。例如,鑭和鈰是汽車觸媒轉換器的關鍵成分,透過將廢氣污染物轉化為無害物質,有助於減少有害廢氣排放。在陶瓷製造中,添加氧化釔、氧化釹、氧化鉺等稀土元素氧化物來改善陶瓷材料的性能。這些氧化物可以提高陶瓷的強度和耐用性,並改變其物理和光學性能,適用於電子、結構部件和裝飾品等特定應用。稀土元素是玻璃製造的重要添加物。用於改善玻璃的光學性能和耐久性。例如,將燈籠整合到相機和望遠鏡鏡頭中以增加屈光並減少光學色散。玻璃工業利用稀土元素化合物(尤其是氧化鈰)卓越的拋光能力。稀土元素化合物的精細研磨特性使其成為光學玻璃、高品質鏡子和鏡片精密拋光的理想選擇,確保光滑、無缺陷的光潔度,這對於光學清晰度非常重要。稀土元素經常用於金屬合金的生產中,以改善基底金屬的材料性能。例如,在鎂或鋁中添加釹可顯著提高合金的強度和耐熱性。一些最強的永久磁鐵是使用稀土元素製造的。釹、鏑和镨是製造高強度釹鐵硼 (NdFeB) 磁體最著名的元素之一。稀土元素磷光體在顯示器技術和照明領域發揮重要作用。銪和鋱等元素可產生電視和電腦螢幕中的紅色和綠色磷光體,而釔摻雜有銪,可用作 LED 照明中的紅色磷光體。這些材料可以將紫外線轉化為可見光。
區域洞察
鑑於風力發電機和電動車的生產推動了需求,面對以再生能源來源為重點的綠色能源舉措,美洲地區的稀土材料呈現強勁成長。此外,從航太到家用電子電器,許多高科技產業都利用稀土元素的磁性、發光和電氣特性,推動了市場成長。在歐洲、中東和非洲地區,歐洲處於向更永續的未來能源轉型的前沿,導致對風力發電機等可再生能源基礎設施的投資增加,從而促進了稀土材料的使用。此外,歐盟(EU)制定了各種稀土元素安全穩定供應的法規,由於這些材料對歐洲工業的重要性,減少了對進口的依賴。亞太地區的市場呈現出機會主義的格局,因為該地區擁有廣泛的工業部門,需要大量這些要素來生產消費品。亞太國家是世界電子製造中心,稀土元素廣泛用於製造智慧型手機和電腦等產品。主要經濟體對汽車領域的大量投資,特別是電動車(EV),正在推動電動車電池和馬達中稀土元素的需求。
FPNV定位矩陣
FPNV定位矩陣對於評估稀土元素市場至關重要。我們檢視與業務策略和產品滿意度相關的關鍵指標,以對供應商進行全面評估。這種深入的分析使用戶能夠根據自己的要求做出明智的決策。根據評估,供應商被分為四個成功程度不同的像限。最前線 (F)、探路者 (P)、利基 (N) 和重要 (V)。
市場佔有率分析
市場佔有率分析是一種綜合工具,可以對稀土元素市場供應商的現狀進行深入而深入的研究。全面比較和分析供應商在整體收益、基本客群和其他關鍵指標方面的貢獻,以便更好地了解公司的績效及其在爭奪市場佔有率時面臨的挑戰。此外,該分析還提供了對該細分市場競爭特徵的寶貴見解,包括在研究基準年觀察到的累積、分散主導地位和合併特徵等因素。詳細程度的提高使供應商能夠做出更明智的決策並制定有效的策略,從而在市場上獲得競爭優勢。
1. 市場滲透率:提供有關主要企業所服務的市場的全面資訊。
2. 市場開拓:我們深入研究利潤豐厚的新興市場,並分析其在成熟細分市場的滲透率。
3. 市場多元化:包括新產品發布、開拓地區、最新發展和投資的詳細資訊。
4. 競爭評估和情報:對主要企業的市場佔有率、策略、產品、認證、監管狀況、專利狀況和製造能力進行全面評估。
5. 產品開發與創新:包括對未來技術、研發活動和突破性產品開發的智力見解。
1.稀土元素市場的市場規模與預測是多少?
2.在稀土元素市場預測期內,我們應該考慮投資哪些產品與應用?
3.稀土元素市場的技術趨勢和法規結構是什麼?
4.稀土元素市場主要廠商的市場佔有率為何?
5.進入稀土元素市場的合適形式和策略手段是什麼?
[193 Pages Report] The Rare Earth Elements Market size was estimated at USD 7.76 billion in 2023 and expected to reach USD 8.82 billion in 2024, at a CAGR 13.94% to reach USD 19.38 billion by 2030.
The rare earth elements comprise metallic elements included in the periodic table's lanthanide series, along with scandium and yttrium. These elements are pivotal due to their specialized magnetic, phosphorescent, and catalytic properties. They are essential components in a wide range of high-technology applications and critical for advancing and sustaining global innovations in clean energy technologies, electronics, defense, manufacturing, and healthcare. Technology innovation propels demand for rare earth elements in high-tech applications and products, including smartphones and EVs. Further government investments & policies supporting the clean energy & defense sector are boosting the demand for these elements. However, the concentration of supply in a few countries leading to market & price volatility and environmental concerns related to the mining & processing of these elements may hamper the market's growth. Nevertheless, technological improvement to explore and extract rare earth elements more efficiently and sustainably and develop cost-effective recycling processes is expected to create growth prospects for the market.
KEY MARKET STATISTICS | |
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Base Year [2023] | USD 7.76 billion |
Estimated Year [2024] | USD 8.82 billion |
Forecast Year [2030] | USD 19.38 billion |
CAGR (%) | 13.94% |
Product: Burgeoning preference for oxides owing to their high-technology applications
Rare earth oxides (REOs) are compounds of rare earth elements (REEs) in the oxidized form. These oxides are extracted from rare earth ores such as bastnaesite, monazite, and xenotime. These ores contain a complex mix of various REEs, such as lanthanum, cerium, and yttrium. Rare earth oxides serve as critical raw materials for many high-technology applications, including catalysts, glass polishing, ceramics, and metallurgy, as well as precursors for further purification and production of metals and alloys. Pure or extracted rare earth metals refer to the elemental form of REEs separated and purified from their oxide or ore states. These metals are isolated through metallurgical processes such as solvent extraction, reduction, or electrolysis. Applications include the production of strong permanent magnets, metal alloys for aerospace and military equipment, batteries, electronic devices, and clean energy, such as in the manufacturing of hybrid and electric vehicle motors and wind turbine generators.
Type: Increasing adoption of dysprosium oxide provides resistance to demagnetization at high temperatures
Cerium oxide, commonly known as ceria, is one of the most abundant of the rare earth oxides. Cerium oxide has many applications, including as a polishing agent for glass and semiconductors, catalytic converters for automobile exhaust systems, and fuel cell oxidation catalysts. Dysprosium oxide is a key material in manufacturing neodymium-based magnets, which are essential for high-performance motors used in electric vehicles and wind turbines. Europium oxide is used primarily as a red phosphor in television sets and fluorescent lamps. This compound is crucial in producing certain types of lasers and other optoelectronic devices due to its luminescent properties. Gadolinium oxide is used in medical imaging for enhancing MRI images, as gadolinium compounds are used as contrast agents. Lanthanum oxide is an important catalyst in refining petroleum and is also used to produce specialty glasses, such as camera and telescope lenses, due to its ability to absorb ultraviolet light. Neodymium oxide is an essential component in the production of NdFeB permanent magnets, which are used in various high-tech applications, including in electric motors and generators. It is also used in glass dyes and for coloring ceramics. Praseodymium oxide is used to create high-strength metals for aircraft engines and is also a vital coloring pigment for glasses and enamels. Samarium oxide is used in the glass industry to make special infrared-absorbing glass and ceramics. Terbium oxide is used in solid-state devices, as a phosphor in fluorescent lamps, and with europium oxide in trichromatic lighting. It also has applications in various types of electronic components and sensors. Yttrium oxide is used to stabilize zirconia in ceramics and to produce yttrium iron garnets, which are very effective microwave filters.
Application: Evolving utilization of rare earth elements as catalysts
Rare earth elements are widely used as catalysts in various industrial processes. For instance, Lanthanum and Cerium are key ingredients in catalytic converters for automobiles, where they help reduce harmful emissions by converting exhaust pollutants into less harmful substances. In the manufacture of ceramics, rare earth oxides such as Yttrium oxide, Neodymium oxide, and Erbium oxide are added to improve the properties of ceramic materials. These oxides can enhance the strength and durability of ceramics and modify their physical and optical characteristics for specific applications such as electronics, structural components, and decorative items. Rare earth elements serve as important additives in glass making. They are used to improve the optical properties and durability of glass. Lanthanum, for instance, is incorporated into camera and telescope lenses to increase refractivity and reduce optical dispersion. The glass industry leverages rare earth compounds, particularly Cerium oxide, for their exceptional polishing abilities. The fine abrasive quality of these compounds makes them ideal for the precision polishing of optical glass, high-quality mirrors, and lenses, ensuring a smooth and defect-free finish crucial for optical clarity. Rare earth elements are frequently used to produce metal alloys, enhancing the base metals' material characteristics. For instance, adding Neodymium to Magnesium or Aluminium can significantly improve the strength and heat resistance of the alloy. Some of the strongest permanent magnets are produced using rare earth elements. Neodymium, dysprosium, and praseodymium are among the most notable elements to create high-strength neodymium-iron-boron (NdFeB) magnets. Rare earth phosphors are critical in the realm of display technology and lighting. Elements such as Europium and Terbium produce red and green phosphors in television and computer screens, while Yttrium, doped with Europium, serves as a red phosphor in LED lighting. These materials are capable of converting ultraviolet light into visible light.
Regional Insights
The Americas region depicts strong growth for rare earth materials in the face of green energy initiatives focused on renewable energy sources, considering the production of wind turbines and electric vehicles drives demand. Further, the proliferation of numerous high-tech industries, from aerospace to consumer electronics utilize rare earth elements for their magnetic, luminescent, and electrical properties is adding to the market's growth. In the EMEA region, Europe is at the forefront of the energy transition towards a more sustainable future, leading to increased investment in renewable energy infrastructure, such as wind turbines, which boost the application of rare earth materials. Furthermore, The European Union has developed various regulations for secure & stable supply of rare earth elements and reduced dependency on imports due to the critical nature of these materials for the European industry. The Asia Pacific region showcases an opportunistic landscape for the market due to the extensive industrial sector that requires substantial amounts of these elements to produce consumer goods. APAC countries are global hubs for the electronics manufacturing industry, which extensively uses rare earth elements to produce smartphones, computers, and other devices. With significant investments in the automotive sector from major economies, especially in electric vehicles (EVs), demand for rare earth elements in EV batteries and motors is rising.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Rare Earth Elements Market. It offers a comprehensive assessment of vendors, examining key metrics related to Business Strategy and Product Satisfaction. This in-depth analysis empowers users to make well-informed decisions aligned with their requirements. Based on the evaluation, the vendors are then categorized into four distinct quadrants representing varying levels of success: Forefront (F), Pathfinder (P), Niche (N), or Vital (V).
Market Share Analysis
The Market Share Analysis is a comprehensive tool that provides an insightful and in-depth examination of the current state of vendors in the Rare Earth Elements Market. By meticulously comparing and analyzing vendor contributions in terms of overall revenue, customer base, and other key metrics, we can offer companies a greater understanding of their performance and the challenges they face when competing for market share. Additionally, this analysis provides valuable insights into the competitive nature of the sector, including factors such as accumulation, fragmentation dominance, and amalgamation traits observed over the base year period studied. With this expanded level of detail, vendors can make more informed decisions and devise effective strategies to gain a competitive edge in the market.
Key Company Profiles
The report delves into recent significant developments in the Rare Earth Elements Market, highlighting leading vendors and their innovative profiles. These include Alkane Resources Ltd., American Rare Earths Limited, Arafura Resources Ltd., Avalon Advanced Materials Inc., Canada Rare Earth Corporation, China Rare Earth Holdings Limited, Energy Transition Minerals Ltd, Eutectix, LLC by Molycorp Inc., Frontier Rare Earths Limited, Iluka Resource Ltd., IREL Limited, Lynas Corporation Ltd., Medallion Resources Ltd., Minmetals Land Limited, Mitsubishi Corporation, NEO Materials, Northern Minerals Limited, Peak Rare Earths, Rare Element Resources Ltd., Rio Tinto Group, Shin-Etsu Chemical Co. Ltd., Ucore Rare Metals Inc., and Xiamen Tungsten Co., Ltd..
Market Segmentation & Coverage
1. Market Penetration: It presents comprehensive information on the market provided by key players.
2. Market Development: It delves deep into lucrative emerging markets and analyzes the penetration across mature market segments.
3. Market Diversification: It provides detailed information on new product launches, untapped geographic regions, recent developments, and investments.
4. Competitive Assessment & Intelligence: It conducts an exhaustive assessment of market shares, strategies, products, certifications, regulatory approvals, patent landscape, and manufacturing capabilities of the leading players.
5. Product Development & Innovation: It offers intelligent insights on future technologies, R&D activities, and breakthrough product developments.
1. What is the market size and forecast of the Rare Earth Elements Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Rare Earth Elements Market?
3. What are the technology trends and regulatory frameworks in the Rare Earth Elements Market?
4. What is the market share of the leading vendors in the Rare Earth Elements Market?
5. Which modes and strategic moves are suitable for entering the Rare Earth Elements Market?