시장보고서
상품코드
1874621

세계의 복합 산화물 나노재료 시장

Complex-Oxide Nanomaterials

발행일: | 리서치사: Market Glass, Inc. (Formerly Global Industry Analysts, Inc.) | 페이지 정보: 영문 196 Pages | 배송안내 : 1-2일 (영업일 기준)

    
    
    



※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

세계의 복합 산화물 나노재료 시장은 2030년까지 32억 달러에 달할 전망

세계의 복합 산화물 나노재료 시장은 2024년에 17억 달러로 추정되고 있으며, 2024-2030년의 분석 기간에 CAGR 11.9%로 성장하며, 2030년까지 32억 달러에 달할 것으로 예상되고 있습니다. 이 리포트에서 분석 대상 부문의 하나인 티탄산 리튬은 12.3%의 CAGR을 기록하며, 분석 기간 종료까지 18억 달러에 달할 것으로 예측됩니다. 희토류 금속 산화물 부문의 성장률은 분석 기간에 14.0%의 CAGR로 추정되고 있습니다.

미국 시장은 4억 4,560만 달러로 추정되는 한편, 중국은 10.8%의 CAGR로 성장할 것으로 예측됩니다.

미국의 복합 산화물 나노재료 시장은 2024년에 4억 4,560만 달러로 추정되고 있습니다. 세계 2위의 경제대국인 중국은 2024-2030년의 분석 기간에 CAGR 10.8%로 추이하며, 2030년까지 4억 8,970만 달러의 시장 규모에 달할 것으로 예측됩니다. 기타 주목할 만한 지역 시장으로는 일본과 캐나다를 들 수 있으며, 각각 분석 기간 중 10.8%, 9.9%의 CAGR로 성장할 것으로 예측됩니다. 유럽에서는 독일이 약 8.2%의 CAGR로 성장할 것으로 전망되고 있습니다.

세계의 복합 산화물 나노재료 시장 - 주요 시장 동향과 촉진요인의 개요

복합 산화물 나노소재는 첨단 재료과학의 미래를 어떻게 형성하고 있는가?

복합 산화물 나노소재는 복잡한 결정구조를 가진 금속산화물로 구성된 첨단 소재의 일종으로, 나노 스케일로 설계되어 독특한 물리적, 화학적, 전자적 특성을 발휘합니다. 이들 소재는 전자기기, 에너지 저장, 촉매, 환경복원 등 다분야에 걸친 응용 가능성과 뛰어난 범용성으로 최근 큰 주목을 받고 있습니다. 원자 수준에서 구조와 조성을 제어할 수 있으므로 과학자들은 특정 용도에 맞게 나노물질의 특성을 조정할 수 있습니다. 예를 들어 페로브스카이트와 같은 복합 산화물 나노물질은 기존의 실리콘계 태양전지를 대체할 수 있는 효율적이고 비용 효율적인 대안으로 태양광발전 분야에서 매우 유망합니다. 마찬가지로 전자공학 분야에서는 복합 산화물 강유전체, 멀티페로이크 소재 등이 차세대 메모리 소자로 연구되고 있습니다. 전기 전도성과 자성과 같은 여러 가지 기능적 특성을 동시에 발휘할 수 있기 때문입니다. 또한 작은 크기와 높은 표면적, 조정 가능한 특성을 결합하여 촉매 및 환경 용도에 특히 적합합니다. 이러한 재료들은 벌크 재료보다 효과적으로 화학반응을 촉진하거나 오염물질을 분해할 수 있습니다.

복합 산화물 나노소재 개발을 촉진한 기술적 진보는 무엇인가?

복합 산화물 나노소재의 개발은 나노테크놀러지, 재료 합성 기술, 계산 모델링의 발전에 의해 크게 가속화되고 있습니다. 이 분야의 주요 혁신 중 하나는 원자층 증착법(ALD) 및 분자선 에피택시(MBE)와 같은 기술을 통해 원자 수준에서 이러한 재료의 구조와 구성을 제어할 수 있게 되었습니다는 점입니다. 이러한 방법을 통해 특성을 조정한 박막과 나노구조를 정밀하게 제작할 수 있으며, 촉매, 센서, 에너지 저장 장치 등의 용도에서 성능 최적화에 필수적입니다. 또 다른 중요한 발전은 투과전자현미경(TEM)과 주사터널현미경(STM)과 같은 첨단 특성화 툴의 활용입니다. 이를 통해 과학자들은 원자 단위에서 물질을 관찰하고 조작할 수 있게 되었습니다. 이 툴들은 복잡한 산화물 나노물질의 전자적, 자기적, 광학적 거동이 나노 스케일로 축소될 때 어떻게 변화하는지 등 기본 특성에 대한 심층 인사이트를 제공합니다. 또한 계산 모델링과 머신러닝 알고리즘이 복합 산화물 나노소재의 거동 예측에 활용되면서 원하는 특성을 가진 신소재의 발견이 가속화되고 있습니다. 이러한 기술의 통합은 재료 설계의 한계를 뛰어넘어 특정 산업 및 기술 용도에 고도로 최적화된 재료를 개발할 수 있게 해줍니다.

복합 산화물 나노소재는 다양한 산업 분야에서 어떻게 응용되고 있는가?

복합 산화물 나노소재는 특정 요구에 맞게 미세 조정 가능한 뛰어난 기능적 특성으로 인해 다양한 산업분야에서 응용범위가 확대되고 있습니다. 에너지 분야, 특히 효율적이고 지속가능한 에너지 저장 및 변환 장치의 개발에서 이러한 재료는 큰 영향을 미치고 있습니다. 예를 들어 리튬 코발트 산화물(LCO)과 같은 복합 산화물은 리튬이온 배터리의 필수 구성 요소이며, 다른 복합 산화물은 수소 생산의 연료전지 및 전해장치의 촉매로 연구되고 있습니다. 전자 분야에서는 투명 전도성 산화물(TCO)과 같은 복합 산화물 재료가 투명성과 전기 전도성을 겸비한 특이한 특성으로 인해 디스플레이 기술, 터치스크린, 태양전지에 널리 활용되고 있습니다. 또한 복합 산화물 나노물질은 환경 응용, 특히 광촉매와 물 정화에서 중요한 역할을 합니다. 예를 들어 잘 알려진 복합 산화물인 이산화티타늄(TiO2)은 자외선 아래에서 유해한 오염물질을 분해하고 물을 정화하는 광촉매 공정에 사용됩니다. 의료 분야에서도 이러한 재료의 가능성을 모색하기 시작했으며, 특히 약물전달 시스템 및 바이오 이미징에서 생체 적합성과 조정 가능한 표면 특성이 유리하게 작용합니다. 자기적, 전자적, 촉매적 특성을 미세하게 조정할 수 있는 복합 산화물 나노소재는 재생에너지 기술 강화에서 환경적 지속가능성 및 의료 솔루션 개선에 이르기까지 다양한 산업 분야에서 획기적인 역할을 하고 있습니다.

복합 산화물 나노 재료 시장의 성장을 이끄는 요인은 무엇인가?

복합 산화물 나노소재 시장의 성장은 기술 발전, 고성능 소재에 대한 수요 증가, 산업 공정의 지속가능성 추진 등 여러 요인에 의해 주도되고 있습니다. 가장 중요한 촉진요인 중 하나는 효율적인 에너지 솔루션, 특히 재생에너지 저장 및 변환 분야에서 효율적인 에너지 솔루션에 대한 수요 증가입니다. 전 세계가 친환경 에너지원으로 전환하는 가운데, 복합 산화물 나노소재는 성능, 효율, 내구성을 향상시키는 능력으로 인해 전지, 연료전지, 태양전지의 주요 구성 요소로 연구가 진행되고 있습니다. 시장 성장을 이끄는 또 다른 중요한 요소는 전자기기의 소형화입니다. 나노 스케일에서 높은 기능성을 발휘하는 재료가 요구되는 가운데, 강유전성, 자기성, 초전도성 등 다양한 특성을 보이는 복합 산화물 나노소재는 차세대 전자기기, 특히 저장장치 및 처리기술에 적용하기에 이상적인 후보입니다. 또한 환경적 지속가능성에 대한 관심이 높아지면서 산업계는 보다 깨끗하고 효율적인 공정을 실현할 수 있는 소재를 채택하고 있습니다. 특히 촉매 및 환경 분야에서의 응용에서 복합 산화물 나노소재는 오염 및 폐기물 감소에 기여하는 솔루션을 제공하여 수요를 더욱 증가시키고 있습니다. 나노테크놀러지과 재료과학의 발전으로 이러한 재료의 제조비용이 낮아져 상업적 활용이 더욱 용이해졌습니다. 산업계가 혁신과 지속가능성에 대한 우선순위가 계속 높아짐에 따라 복합 산화물 나노소재의 광범위한 응용 가능성과 독특한 기능적 특성에 힘입어 그 수요가 증가할 것으로 예측됩니다.

부문 :

제품(티탄산 리튬, 희토류 금속 산화물, 규소 수소화물, 인산칼슘)

조사 대상 기업의 예

  • Altair Nanotechnologies, Inc.
  • American Elements
  • Dow, Inc.
  • DuPont de Nemours, Inc.
  • Eprui Nanoparticles & Microspheres Co. Ltd.
  • Nanostructured & Amorphous Materials, Inc.
  • Polysciences, Inc.
  • Reinste Nano Ventures Pvt., Ltd.
  • SkySpring Nanomaterials, Inc.

AI 통합

검증된 전문가 컨텐츠와 AI 툴을 통해 시장 및 경쟁 정보를 혁신하고 있습니다.

Global Industry Analysts는 일반적인 LLM이나 산업별 SLM에 대한 쿼리 방식에 의존하는 대신, 전 세계 도메인 전문가들이 엄선한 컨텐츠 리포지토리를 구축했습니다. 여기에는 비디오 전사, 블로그, 검색엔진 조사, 그리고 방대한 양의 기업, 제품/서비스, 시장 데이터가 포함됩니다.

관세 영향 계수

이번 보고서에는 Global Industry Analysts가 예측한 본사 소재지, 생산기지, 수출입(완제품 및 OEM)에 따른 기업의 경쟁력 변화에 따라 지역 시장에 미치는 관세의 영향을 반영했습니다. 이러한 복잡하고 다면적인 시장 현실은 수입원가(COGS) 증가, 수익성 감소, 공급망 재편 등 미시적 및 거시적 시장 역학을 통해 경쟁사들에게 영향을 미칠 것입니다.

목차

제1장 조사 방법

제2장 개요

  • 시장 개요
  • 주요 기업
  • 시장 동향과 촉진요인
  • 세계 시장 전망

제3장 시장 분석

  • 미국
  • 캐나다
  • 일본
  • 중국
  • 유럽
  • 프랑스
  • 독일
  • 이탈리아
  • 영국
  • 기타 유럽
  • 아시아태평양
  • 세계의 기타 지역

제4장 경쟁

KSA

Global Complex-Oxide Nanomaterials Market to Reach US$3.2 Billion by 2030

The global market for Complex-Oxide Nanomaterials estimated at US$1.7 Billion in the year 2024, is expected to reach US$3.2 Billion by 2030, growing at a CAGR of 11.9% over the analysis period 2024-2030. Lithium Titanate, one of the segments analyzed in the report, is expected to record a 12.3% CAGR and reach US$1.8 Billion by the end of the analysis period. Growth in the Rare Earth Metal Oxide segment is estimated at 14.0% CAGR over the analysis period.

The U.S. Market is Estimated at US$445.6 Million While China is Forecast to Grow at 10.8% CAGR

The Complex-Oxide Nanomaterials market in the U.S. is estimated at US$445.6 Million in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$489.7 Million by the year 2030 trailing a CAGR of 10.8% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 10.8% and 9.9% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 8.2% CAGR.

Global Complex-Oxide Nanomaterials Market - Key Trends and Drivers Summarized

How Are Complex-Oxide Nanomaterials Shaping the Future of Advanced Materials Science?

Complex-oxide nanomaterials are a class of advanced materials composed of metal oxides with complex crystal structures, often engineered at the nanoscale to exhibit unique physical, chemical, and electronic properties. These materials have garnered significant attention in recent years due to their remarkable versatility and potential for applications across multiple fields, including electronics, energy storage, catalysis, and environmental remediation. The ability to manipulate their structure and composition at the atomic level allows scientists to tailor the properties of these nanomaterials for specific uses. For instance, complex-oxide nanomaterials such as perovskites have shown immense promise in photovoltaic applications, offering an efficient and cost-effective alternative to traditional silicon-based solar cells. Similarly, in the field of electronics, materials like complex-oxide ferroelectrics and multiferroics are being explored for next-generation memory devices due to their ability to exhibit multiple functional properties, such as electrical conductivity and magnetism, simultaneously. Their small size, combined with high surface area and tunable properties, makes them especially suitable for catalysis and environmental applications, where they can accelerate chemical reactions or break down pollutants more effectively than bulk materials.

What Technological Advancements Have Pushed the Development of Complex-Oxide Nanomaterials?

The development of complex-oxide nanomaterials has been significantly accelerated by advancements in nanotechnology, material synthesis techniques, and computational modeling. One of the key innovations in this field is the ability to control the structure and composition of these materials at the atomic level through techniques such as atomic layer deposition (ALD) and molecular beam epitaxy (MBE). These methods allow for the precise fabrication of thin films and nanostructures with tailored properties, which is crucial for optimizing their performance in applications such as catalysis, sensors, and energy storage devices. Another important advancement is the use of advanced characterization tools, such as transmission electron microscopy (TEM) and scanning tunneling microscopy (STM), which enable scientists to observe and manipulate materials at the atomic scale. These tools have provided deeper insights into the fundamental properties of complex-oxide nanomaterials, such as how their electronic, magnetic, and optical behaviors change when their size is reduced to the nanoscale. In addition, computational modeling and machine learning algorithms are now being used to predict the behavior of complex-oxide nanomaterials, accelerating the discovery of new materials with desirable properties. The integration of these technologies is pushing the boundaries of what is possible in material design, enabling researchers to develop highly optimized materials for specific industrial and technological applications.

How Are Complex-Oxide Nanomaterials Applied Across Various Industries?

Complex-oxide nanomaterials are increasingly finding applications across diverse industries due to their exceptional functional properties, which can be fine-tuned for specific needs. In the energy sector, these materials are making a substantial impact, particularly in the development of more efficient and sustainable energy storage and conversion devices. For example, complex oxides like lithium cobalt oxide (LCO) are essential components in lithium-ion batteries, while other complex oxides are being investigated as catalysts for fuel cells and electrolyzers in hydrogen production. In electronics, complex-oxide materials such as transparent conducting oxides (TCOs) are widely used in display technologies, touch screens, and solar cells due to their unique combination of transparency and electrical conductivity. Additionally, complex-oxide nanomaterials play a crucial role in environmental applications, particularly in photocatalysis and water purification. For instance, titanium dioxide (TiO2), a well-known complex oxide, is used in photocatalytic processes to degrade harmful pollutants and purify water under UV light. The medical field is also beginning to explore the potential of these materials, particularly in drug delivery systems and bioimaging, where their biocompatibility and tunable surface properties are advantageous. The ability to fine-tune their magnetic, electronic, and catalytic properties has made complex-oxide nanomaterials a game-changer in a wide range of industrial applications, from enhancing renewable energy technologies to improving environmental sustainability and healthcare solutions.

What Factors Are Driving the Growth of the Complex-Oxide Nanomaterials Market?

The growth in the complex-oxide nanomaterials market is driven by several factors, including technological advancements, increasing demand for high-performance materials, and the push for sustainability in industrial processes. One of the most significant drivers is the rising demand for efficient energy solutions, particularly in the fields of renewable energy storage and conversion. As the world transitions to greener energy sources, complex-oxide nanomaterials are being explored as key components in batteries, fuel cells, and solar cells due to their ability to enhance performance, efficiency, and durability. Another important factor driving market growth is the miniaturization of electronic devices, which requires materials with high functionality at the nanoscale. Complex-oxide nanomaterials, with their ability to exhibit multiple properties such as ferroelectricity, magnetism, and superconductivity, are ideal candidates for use in next-generation electronics, particularly in memory storage and processing technologies. Additionally, the increasing focus on environmental sustainability is pushing industries to adopt materials that can facilitate cleaner and more efficient processes. Complex-oxide nanomaterials, particularly in catalytic and environmental applications, offer solutions for reducing pollution and waste, further boosting their demand. Advances in nanotechnology and material science have also lowered the production costs of these materials, making them more accessible for commercial use. As industries continue to prioritize innovation and sustainability, the demand for complex-oxide nanomaterials is expected to rise, fueled by their broad application potential and unique functional properties.

SCOPE OF STUDY:

The report analyzes the Complex-Oxide Nanomaterials market in terms of units by the following Segments, and Geographic Regions/Countries:

Segments:

Product (Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride, Calcium Phosphate)

Geographic Regions/Countries:

World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; and Rest of Europe); Asia-Pacific; Rest of World.

Select Competitors (Total 46 Featured) -

  • Altair Nanotechnologies, Inc.
  • American Elements
  • Dow, Inc.
  • DuPont de Nemours, Inc.
  • Eprui Nanoparticles & Microspheres Co. Ltd.
  • Nanostructured & Amorphous Materials, Inc.
  • Polysciences, Inc.
  • Reinste Nano Ventures Pvt., Ltd.
  • SkySpring Nanomaterials, Inc.

AI INTEGRATIONS

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TARIFF IMPACT FACTOR

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TABLE OF CONTENTS

I. METHODOLOGY

II. EXECUTIVE SUMMARY

  • 1. MARKET OVERVIEW
    • Trade Shocks, Uncertainty, and the Structural Rewiring of the Global Economy
    • Global Economic Update
    • Complex-Oxide Nanomaterials - Global Key Competitors Percentage Market Share in 2025 (E)
    • Competitive Market Presence - Strong/Active/Niche/Trivial for Players Worldwide in 2025 (E)
  • 2. FOCUS ON SELECT PLAYERS
  • 3. MARKET TRENDS & DRIVERS
    • Advancements in Nanotechnology Propel Growth of Complex-Oxide Nanomaterials in Advanced Applications
    • Rising Demand for Energy Storage Solutions Expands Addressable Market for Complex-Oxide Nanomaterials
    • Increased Focus on Sustainable and Renewable Energy Sources Throws the Spotlight on Complex-Oxide Nanomaterials in Solar Cells
    • Technological Innovations in Catalysis Drive Adoption of Complex-Oxide Nanomaterials in Chemical Processing
    • Emergence of Next-Generation Electronics Spurs Growth of Complex-Oxide Nanomaterials for Enhanced Conductivity
    • Growing Use of Complex-Oxide Nanomaterials in Environmental Remediation Strengthens Business Case for Water and Air Purification Solutions
    • Rising Applications in Biomedical Devices and Drug Delivery Accelerate Demand for Complex-Oxide Nanomaterials
    • Advances in Superconductivity Research Propel Growth of Complex-Oxide Nanomaterials in Quantum Computing
    • Growing Role of Complex-Oxide Nanomaterials in Hydrogen Production Expands Market Opportunities in Energy Transition
  • 4. GLOBAL MARKET PERSPECTIVE
    • TABLE 1: World Complex-Oxide Nanomaterials Market Analysis of Annual Sales in US$ Thousand for Years 2015 through 2030
    • TABLE 2: World Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 3: World Historic Review for Complex-Oxide Nanomaterials by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 4: World 15-Year Perspective for Complex-Oxide Nanomaterials by Geographic Region - Percentage Breakdown of Value Sales for USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets for Years 2015, 2025 & 2030
    • TABLE 5: World Recent Past, Current & Future Analysis for Lithium Titanate by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 6: World Historic Review for Lithium Titanate by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 7: World 15-Year Perspective for Lithium Titanate by Geographic Region - Percentage Breakdown of Value Sales for USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World for Years 2015, 2025 & 2030
    • TABLE 8: World Recent Past, Current & Future Analysis for Rare Earth Metal Oxide by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 9: World Historic Review for Rare Earth Metal Oxide by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 10: World 15-Year Perspective for Rare Earth Metal Oxide by Geographic Region - Percentage Breakdown of Value Sales for USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World for Years 2015, 2025 & 2030
    • TABLE 11: World Recent Past, Current & Future Analysis for Silica Hydride by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 12: World Historic Review for Silica Hydride by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 13: World 15-Year Perspective for Silica Hydride by Geographic Region - Percentage Breakdown of Value Sales for USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World for Years 2015, 2025 & 2030
    • TABLE 14: World Recent Past, Current & Future Analysis for Calcium Phosphate by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 15: World Historic Review for Calcium Phosphate by Geographic Region - USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 16: World 15-Year Perspective for Calcium Phosphate by Geographic Region - Percentage Breakdown of Value Sales for USA, Canada, Japan, China, Europe, Asia-Pacific and Rest of World for Years 2015, 2025 & 2030

III. MARKET ANALYSIS

  • UNITED STATES
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in the United States for 2025 (E)
    • TABLE 17: USA Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 18: USA Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 19: USA 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • CANADA
    • TABLE 20: Canada Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 21: Canada Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 22: Canada 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • JAPAN
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in Japan for 2025 (E)
    • TABLE 23: Japan Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 24: Japan Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 25: Japan 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • CHINA
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in China for 2025 (E)
    • TABLE 26: China Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 27: China Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 28: China 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • EUROPE
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in Europe for 2025 (E)
    • TABLE 29: Europe Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Geographic Region - France, Germany, Italy, UK and Rest of Europe Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2024 through 2030 and % CAGR
    • TABLE 30: Europe Historic Review for Complex-Oxide Nanomaterials by Geographic Region - France, Germany, Italy, UK and Rest of Europe Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 31: Europe 15-Year Perspective for Complex-Oxide Nanomaterials by Geographic Region - Percentage Breakdown of Value Sales for France, Germany, Italy, UK and Rest of Europe Markets for Years 2015, 2025 & 2030
    • TABLE 32: Europe Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 33: Europe Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 34: Europe 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • FRANCE
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in France for 2025 (E)
    • TABLE 35: France Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 36: France Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 37: France 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • GERMANY
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in Germany for 2025 (E)
    • TABLE 38: Germany Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 39: Germany Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 40: Germany 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • ITALY
    • TABLE 41: Italy Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 42: Italy Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 43: Italy 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • UNITED KINGDOM
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in the United Kingdom for 2025 (E)
    • TABLE 44: UK Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 45: UK Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 46: UK 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • REST OF EUROPE
    • TABLE 47: Rest of Europe Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 48: Rest of Europe Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 49: Rest of Europe 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • ASIA-PACIFIC
    • Complex-Oxide Nanomaterials Market Presence - Strong/Active/Niche/Trivial - Key Competitors in Asia-Pacific for 2025 (E)
    • TABLE 50: Asia-Pacific Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 51: Asia-Pacific Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 52: Asia-Pacific 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030
  • REST OF WORLD
    • TABLE 53: Rest of World Recent Past, Current & Future Analysis for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate - Independent Analysis of Annual Sales in US$ Thousand for the Years 2024 through 2030 and % CAGR
    • TABLE 54: Rest of World Historic Review for Complex-Oxide Nanomaterials by Product - Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate Markets - Independent Analysis of Annual Sales in US$ Thousand for Years 2015 through 2023 and % CAGR
    • TABLE 55: Rest of World 15-Year Perspective for Complex-Oxide Nanomaterials by Product - Percentage Breakdown of Value Sales for Lithium Titanate, Rare Earth Metal Oxide, Silica Hydride and Calcium Phosphate for the Years 2015, 2025 & 2030

IV. COMPETITION

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