1 Scope of the Report
1.1 Market Introduction
1.2 Years Considered
1.3 Research Objectives
1.4 Market Research Methodology
1.5 Research Process and Data Source
1.6 Economic Indicators
1.7 Currency Considered
1.8 Market Estimation Caveats
2 Executive Summary
2.1 World Market Overview
2.1.1 Global Infrared Spectroscopy for Semiconductor Annual Sales 2018-2029
2.1.2 World Current & Future Analysis for Infrared Spectroscopy for Semiconductor by Geographic Region, 2018, 2022 & 2029
2.1.3 World Current & Future Analysis for Infrared Spectroscopy for Semiconductor by Country/Region, 2018, 2022 & 2029
2.2 Infrared Spectroscopy for Semiconductor Segment by Type
2.2.1 FTIR
2.2.2 FT-NIR
2.2.3 Other
2.3 Infrared Spectroscopy for Semiconductor Sales by Type
2.3.1 Global Infrared Spectroscopy for Semiconductor Sales Market Share by Type (2018-2023)
2.3.2 Global Infrared Spectroscopy for Semiconductor Revenue and Market Share by Type (2018-2023)
2.3.3 Global Infrared Spectroscopy for Semiconductor Sale Price by Type (2018-2023)
2.4 Infrared Spectroscopy for Semiconductor Segment by Application
2.4.1 Integrated Circuits
2.4.2 Discrete Devices
2.4.3 Sensors
2.4.4 Optoelectronic Devices
2.5 Infrared Spectroscopy for Semiconductor Sales by Application
2.5.1 Global Infrared Spectroscopy for Semiconductor Sale Market Share by Application (2018-2023)
2.5.2 Global Infrared Spectroscopy for Semiconductor Revenue and Market Share by Application (2018-2023)
2.5.3 Global Infrared Spectroscopy for Semiconductor Sale Price by Application (2018-2023)
3 Global Infrared Spectroscopy for Semiconductor by Company
3.1 Global Infrared Spectroscopy for Semiconductor Breakdown Data by Company
3.1.1 Global Infrared Spectroscopy for Semiconductor Annual Sales by Company (2018-2023)
3.1.2 Global Infrared Spectroscopy for Semiconductor Sales Market Share by Company (2018-2023)
3.2 Global Infrared Spectroscopy for Semiconductor Annual Revenue by Company (2018-2023)
3.2.1 Global Infrared Spectroscopy for Semiconductor Revenue by Company (2018-2023)
3.2.2 Global Infrared Spectroscopy for Semiconductor Revenue Market Share by Company (2018-2023)
3.3 Global Infrared Spectroscopy for Semiconductor Sale Price by Company
3.4 Key Manufacturers Infrared Spectroscopy for Semiconductor Producing Area Distribution, Sales Area, Product Type
3.4.1 Key Manufacturers Infrared Spectroscopy for Semiconductor Product Location Distribution
3.4.2 Players Infrared Spectroscopy for Semiconductor Products Offered
3.5 Market Concentration Rate Analysis
3.5.1 Competition Landscape Analysis
3.5.2 Concentration Ratio (CR3, CR5 and CR10) & (2018-2023)
3.6 New Products and Potential Entrants
3.7 Mergers & Acquisitions, Expansion
4 World Historic Review for Infrared Spectroscopy for Semiconductor by Geographic Region
4.1 World Historic Infrared Spectroscopy for Semiconductor Market Size by Geographic Region (2018-2023)
4.1.1 Global Infrared Spectroscopy for Semiconductor Annual Sales by Geographic Region (2018-2023)
4.1.2 Global Infrared Spectroscopy for Semiconductor Annual Revenue by Geographic Region (2018-2023)
4.2 World Historic Infrared Spectroscopy for Semiconductor Market Size by Country/Region (2018-2023)
4.2.1 Global Infrared Spectroscopy for Semiconductor Annual Sales by Country/Region (2018-2023)
4.2.2 Global Infrared Spectroscopy for Semiconductor Annual Revenue by Country/Region (2018-2023)
4.3 Americas Infrared Spectroscopy for Semiconductor Sales Growth
4.4 APAC Infrared Spectroscopy for Semiconductor Sales Growth
4.5 Europe Infrared Spectroscopy for Semiconductor Sales Growth
4.6 Middle East & Africa Infrared Spectroscopy for Semiconductor Sales Growth
5 Americas
5.1 Americas Infrared Spectroscopy for Semiconductor Sales by Country
5.1.1 Americas Infrared Spectroscopy for Semiconductor Sales by Country (2018-2023)
5.1.2 Americas Infrared Spectroscopy for Semiconductor Revenue by Country (2018-2023)
5.2 Americas Infrared Spectroscopy for Semiconductor Sales by Type
5.3 Americas Infrared Spectroscopy for Semiconductor Sales by Application
5.4 United States
5.5 Canada
5.6 Mexico
5.7 Brazil
6 APAC
6.1 APAC Infrared Spectroscopy for Semiconductor Sales by Region
6.1.1 APAC Infrared Spectroscopy for Semiconductor Sales by Region (2018-2023)
6.1.2 APAC Infrared Spectroscopy for Semiconductor Revenue by Region (2018-2023)
6.2 APAC Infrared Spectroscopy for Semiconductor Sales by Type
6.3 APAC Infrared Spectroscopy for Semiconductor Sales by Application
6.4 China
6.5 Japan
6.6 South Korea
6.7 Southeast Asia
6.8 India
6.9 Australia
6.10 China Taiwan
7 Europe
7.1 Europe Infrared Spectroscopy for Semiconductor by Country
7.1.1 Europe Infrared Spectroscopy for Semiconductor Sales by Country (2018-2023)
7.1.2 Europe Infrared Spectroscopy for Semiconductor Revenue by Country (2018-2023)
7.2 Europe Infrared Spectroscopy for Semiconductor Sales by Type
7.3 Europe Infrared Spectroscopy for Semiconductor Sales by Application
7.4 Germany
7.5 France
7.6 UK
7.7 Italy
7.8 Russia
8 Middle East & Africa
8.1 Middle East & Africa Infrared Spectroscopy for Semiconductor by Country
8.1.1 Middle East & Africa Infrared Spectroscopy for Semiconductor Sales by Country (2018-2023)
8.1.2 Middle East & Africa Infrared Spectroscopy for Semiconductor Revenue by Country (2018-2023)
8.2 Middle East & Africa Infrared Spectroscopy for Semiconductor Sales by Type
8.3 Middle East & Africa Infrared Spectroscopy for Semiconductor Sales by Application
8.4 Egypt
8.5 South Africa
8.6 Israel
8.7 Turkey
8.8 GCC Countries
9 Market Drivers, Challenges and Trends
9.1 Market Drivers & Growth Opportunities
9.2 Market Challenges & Risks
9.3 Industry Trends
10 Manufacturing Cost Structure Analysis
10.1 Raw Material and Suppliers
10.2 Manufacturing Cost Structure Analysis of Infrared Spectroscopy for Semiconductor
10.3 Manufacturing Process Analysis of Infrared Spectroscopy for Semiconductor
10.4 Industry Chain Structure of Infrared Spectroscopy for Semiconductor
11 Marketing, Distributors and Customer
11.1 Sales Channel
11.1.1 Direct Channels
11.1.2 Indirect Channels
11.2 Infrared Spectroscopy for Semiconductor Distributors
11.3 Infrared Spectroscopy for Semiconductor Customer
12 World Forecast Review for Infrared Spectroscopy for Semiconductor by Geographic Region
12.1 Global Infrared Spectroscopy for Semiconductor Market Size Forecast by Region
12.1.1 Global Infrared Spectroscopy for Semiconductor Forecast by Region (2024-2029)
12.1.2 Global Infrared Spectroscopy for Semiconductor Annual Revenue Forecast by Region (2024-2029)
12.2 Americas Forecast by Country
12.3 APAC Forecast by Region
12.4 Europe Forecast by Country
12.5 Middle East & Africa Forecast by Country
12.6 Global Infrared Spectroscopy for Semiconductor Forecast by Type
12.7 Global Infrared Spectroscopy for Semiconductor Forecast by Application
13 Key Players Analysis
13.1 Bruker
13.1.1 Bruker Company Information
13.1.2 Bruker Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.1.3 Bruker Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.1.4 Bruker Main Business Overview
13.1.5 Bruker Latest Developments
13.2 Park Systems
13.2.1 Park Systems Company Information
13.2.2 Park Systems Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.2.3 Park Systems Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.2.4 Park Systems Main Business Overview
13.2.5 Park Systems Latest Developments
13.3 Thermo Fisher
13.3.1 Thermo Fisher Company Information
13.3.2 Thermo Fisher Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.3.3 Thermo Fisher Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.3.4 Thermo Fisher Main Business Overview
13.3.5 Thermo Fisher Latest Developments
13.4 Shimadzu
13.4.1 Shimadzu Company Information
13.4.2 Shimadzu Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.4.3 Shimadzu Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.4.4 Shimadzu Main Business Overview
13.4.5 Shimadzu Latest Developments
13.5 ABB
13.5.1 ABB Company Information
13.5.2 ABB Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.5.3 ABB Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.5.4 ABB Main Business Overview
13.5.5 ABB Latest Developments
13.6 CI Semi
13.6.1 CI Semi Company Information
13.6.2 CI Semi Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.6.3 CI Semi Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.6.4 CI Semi Main Business Overview
13.6.5 CI Semi Latest Developments
13.7 Process Insights
13.7.1 Process Insights Company Information
13.7.2 Process Insights Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.7.3 Process Insights Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.7.4 Process Insights Main Business Overview
13.7.5 Process Insights Latest Developments
13.8 HORIBA
13.8.1 HORIBA Company Information
13.8.2 HORIBA Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.8.3 HORIBA Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.8.4 HORIBA Main Business Overview
13.8.5 HORIBA Latest Developments
13.9 Semilab
13.9.1 Semilab Company Information
13.9.2 Semilab Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.9.3 Semilab Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.9.4 Semilab Main Business Overview
13.9.5 Semilab Latest Developments
13.10 Avantes
13.10.1 Avantes Company Information
13.10.2 Avantes Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.10.3 Avantes Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.10.4 Avantes Main Business Overview
13.10.5 Avantes Latest Developments
13.11 Si-Ware
13.11.1 Si-Ware Company Information
13.11.2 Si-Ware Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.11.3 Si-Ware Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.11.4 Si-Ware Main Business Overview
13.11.5 Si-Ware Latest Developments
13.12 Onto Innovation
13.12.1 Onto Innovation Company Information
13.12.2 Onto Innovation Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.12.3 Onto Innovation Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.12.4 Onto Innovation Main Business Overview
13.12.5 Onto Innovation Latest Developments
13.13 Guangdong Xiaofen Instrument
13.13.1 Guangdong Xiaofen Instrument Company Information
13.13.2 Guangdong Xiaofen Instrument Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.13.3 Guangdong Xiaofen Instrument Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.13.4 Guangdong Xiaofen Instrument Main Business Overview
13.13.5 Guangdong Xiaofen Instrument Latest Developments
13.14 Tianjin Gangdong
13.14.1 Tianjin Gangdong Company Information
13.14.2 Tianjin Gangdong Infrared Spectroscopy for Semiconductor Product Portfolios and Specifications
13.14.3 Tianjin Gangdong Infrared Spectroscopy for Semiconductor Sales, Revenue, Price and Gross Margin (2018-2023)
13.14.4 Tianjin Gangdong Main Business Overview
13.14.5 Tianjin Gangdong Latest Developments
14 Research Findings and Conclusion
※参考情報 半導体用赤外分光分析は、半導体材料の特性評価や品質管理に用いられる重要な分析技術です。この分光法は、赤外光を利用して物質の分子構造や化学状態を解析するもので、特に半導体業界において、材料開発やプロセスモニタリングにおいて広く利用されています。 赤外分光分析は、物質に赤外光を照射し、物質内部の分子振動や回転運動に対応するエネルギー準位の遷移を観測する方法です。この過程で、物質内の特定の化学結合や官能基の存在を示す特異的な吸収スペクトルが得られます。これにより、化学成分の同定や定量が可能となるのです。 半導体用赤外分光分析の特徴として、まずその高感度が挙げられます。微量の化学物質や構造変化を検出できるため、半導体デバイスの微細構造の解析に非常に有用です。また、非破壊的に測定が行えるため、製造現場でも使用されることが多いのが特徴です。 赤外分光分析には主に透過型と反射型の二つの測定方法があります。透過型は、薄膜や薄い半導体材料の評価に適しており、試料を通過する光の吸収を観測します。一方、反射型は、金属や厚い材料の分析に用いられ、試料表面で反射された光の強度を測定します。また、干渉型赤外分光法(FTIR)も普及しており、時間的な分解能が高く、複雑なスペクトルの解析に優れています。 用途については、赤外分光分析は半導体材料の純度評価、ドーピング濃度の測定、結晶構造の解析、さらには薄膜の特性評価など、多岐にわたります。たとえば、シリコンや化合物半導体(GaN、InPなど)の特性を調査する際に、赤外分光法が不可欠となる場合があります。さらに、微細加工技術が進展する中で、ナノスケールでの材料特性の理解が求められ、赤外分光分析はその重要な手段とされています。 関連技術としては、分光法自体の改良や、他の分析手法との組み合わせが進められています。たとえば、電子顕微鏡と結合した赤外分光法(AFM-IR)などがあり、微細構造の情報と化学的性質を同時に得ることができる技術として注目されています。また、近赤外分光法(NIR)やラマン分光法といった他の分光分析手法も、半導体材料の評価において重要な役割を果たしています。 赤外分光分析は、今後も半導体の高性能化や多様化が進む中で、その重要性が増すことが予想されます。環境にやさしい材料の開発や、革新的なデバイスの研究においても、この分光法は不可欠なツールとして活用されるでしょう。新しい技術の進展に伴い、さらなる高感度化や迅速化が期待されており、半導体産業だけでなく、さまざまな分野での応用が見込まれるのです。 そのため、半導体用赤外分光分析は、物質科学や材料科学の研究において非常に重要な役割を担っており、今後の技術革新に大きく寄与することでしょう。このプロセスは、デバイスの性能向上や新しい機能の開発を可能にし、さらなる科学的発見を促進することが期待されています。 |
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