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 Atomic Force Microscopy Scan Annual Sales 2020-2031
2.1.2 World Current & Future Analysis for Atomic Force Microscopy Scan by Geographic Region, 2020, 2024 & 2031
2.1.3 World Current & Future Analysis for Atomic Force Microscopy Scan by Country/Region, 2020, 2024 & 2031
2.2 Atomic Force Microscopy Scan Segment by Type
2.2.1 Manual
2.2.2 Automated
2.3 Atomic Force Microscopy Scan Sales by Type
2.3.1 Global Atomic Force Microscopy Scan Sales Market Share by Type (2020-2025)
2.3.2 Global Atomic Force Microscopy Scan Revenue and Market Share by Type (2020-2025)
2.3.3 Global Atomic Force Microscopy Scan Sale Price by Type (2020-2025)
2.4 Atomic Force Microscopy Scan Segment by Application
2.4.1 Materials Science
2.4.2 Lifescience
2.4.3 Industrial Applications
2.4.4 Other
2.5 Atomic Force Microscopy Scan Sales by Application
2.5.1 Global Atomic Force Microscopy Scan Sale Market Share by Application (2020-2025)
2.5.2 Global Atomic Force Microscopy Scan Revenue and Market Share by Application (2020-2025)
2.5.3 Global Atomic Force Microscopy Scan Sale Price by Application (2020-2025)
3 Global Atomic Force Microscopy Scan by Company
3.1 Global Atomic Force Microscopy Scan Breakdown Data by Company
3.1.1 Global Atomic Force Microscopy Scan Annual Sales by Company (2020-2025)
3.1.2 Global Atomic Force Microscopy Scan Sales Market Share by Company (2020-2025)
3.2 Global Atomic Force Microscopy Scan Annual Revenue by Company (2020-2025)
3.2.1 Global Atomic Force Microscopy Scan Revenue by Company (2020-2025)
3.2.2 Global Atomic Force Microscopy Scan Revenue Market Share by Company (2020-2025)
3.3 Global Atomic Force Microscopy Scan Sale Price by Company
3.4 Key Manufacturers Atomic Force Microscopy Scan Producing Area Distribution, Sales Area, Product Type
3.4.1 Key Manufacturers Atomic Force Microscopy Scan Product Location Distribution
3.4.2 Players Atomic Force Microscopy Scan Products Offered
3.5 Market Concentration Rate Analysis
3.5.1 Competition Landscape Analysis
3.5.2 Concentration Ratio (CR3, CR5 and CR10) & (2020-2025)
3.6 New Products and Potential Entrants
3.7 Mergers & Acquisitions, Expansion
4 World Historic Review for Atomic Force Microscopy Scan by Geographic Region
4.1 World Historic Atomic Force Microscopy Scan Market Size by Geographic Region (2020-2025)
4.1.1 Global Atomic Force Microscopy Scan Annual Sales by Geographic Region (2020-2025)
4.1.2 Global Atomic Force Microscopy Scan Annual Revenue by Geographic Region (2020-2025)
4.2 World Historic Atomic Force Microscopy Scan Market Size by Country/Region (2020-2025)
4.2.1 Global Atomic Force Microscopy Scan Annual Sales by Country/Region (2020-2025)
4.2.2 Global Atomic Force Microscopy Scan Annual Revenue by Country/Region (2020-2025)
4.3 Americas Atomic Force Microscopy Scan Sales Growth
4.4 APAC Atomic Force Microscopy Scan Sales Growth
4.5 Europe Atomic Force Microscopy Scan Sales Growth
4.6 Middle East & Africa Atomic Force Microscopy Scan Sales Growth
5 Americas
5.1 Americas Atomic Force Microscopy Scan Sales by Country
5.1.1 Americas Atomic Force Microscopy Scan Sales by Country (2020-2025)
5.1.2 Americas Atomic Force Microscopy Scan Revenue by Country (2020-2025)
5.2 Americas Atomic Force Microscopy Scan Sales by Type
5.3 Americas Atomic Force Microscopy Scan Sales by Application
5.4 United States
5.5 Canada
5.6 Mexico
5.7 Brazil
6 APAC
6.1 APAC Atomic Force Microscopy Scan Sales by Region
6.1.1 APAC Atomic Force Microscopy Scan Sales by Region (2020-2025)
6.1.2 APAC Atomic Force Microscopy Scan Revenue by Region (2020-2025)
6.2 APAC Atomic Force Microscopy Scan Sales by Type
6.3 APAC Atomic Force Microscopy Scan 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 Atomic Force Microscopy Scan by Country
7.1.1 Europe Atomic Force Microscopy Scan Sales by Country (2020-2025)
7.1.2 Europe Atomic Force Microscopy Scan Revenue by Country (2020-2025)
7.2 Europe Atomic Force Microscopy Scan Sales by Type
7.3 Europe Atomic Force Microscopy Scan 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 Atomic Force Microscopy Scan by Country
8.1.1 Middle East & Africa Atomic Force Microscopy Scan Sales by Country (2020-2025)
8.1.2 Middle East & Africa Atomic Force Microscopy Scan Revenue by Country (2020-2025)
8.2 Middle East & Africa Atomic Force Microscopy Scan Sales by Type
8.3 Middle East & Africa Atomic Force Microscopy Scan 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 Atomic Force Microscopy Scan
10.3 Manufacturing Process Analysis of Atomic Force Microscopy Scan
10.4 Industry Chain Structure of Atomic Force Microscopy Scan
11 Marketing, Distributors and Customer
11.1 Sales Channel
11.1.1 Direct Channels
11.1.2 Indirect Channels
11.2 Atomic Force Microscopy Scan Distributors
11.3 Atomic Force Microscopy Scan Customer
12 World Forecast Review for Atomic Force Microscopy Scan by Geographic Region
12.1 Global Atomic Force Microscopy Scan Market Size Forecast by Region
12.1.1 Global Atomic Force Microscopy Scan Forecast by Region (2026-2031)
12.1.2 Global Atomic Force Microscopy Scan Annual Revenue Forecast by Region (2026-2031)
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 Atomic Force Microscopy Scan Forecast by Type
12.7 Global Atomic Force Microscopy Scan Forecast by Application
13 Key Players Analysis
13.1 Asylum research
13.1.1 Asylum research Company Information
13.1.2 Asylum research Atomic Force Microscopy Scan Product Portfolios and Specifications
13.1.3 Asylum research Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.1.4 Asylum research Main Business Overview
13.1.5 Asylum research Latest Developments
13.2 Bruker Corporation
13.2.1 Bruker Corporation Company Information
13.2.2 Bruker Corporation Atomic Force Microscopy Scan Product Portfolios and Specifications
13.2.3 Bruker Corporation Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.2.4 Bruker Corporation Main Business Overview
13.2.5 Bruker Corporation Latest Developments
13.3 NT-MDT
13.3.1 NT-MDT Company Information
13.3.2 NT-MDT Atomic Force Microscopy Scan Product Portfolios and Specifications
13.3.3 NT-MDT Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.3.4 NT-MDT Main Business Overview
13.3.5 NT-MDT Latest Developments
13.4 Park Systems
13.4.1 Park Systems Company Information
13.4.2 Park Systems Atomic Force Microscopy Scan Product Portfolios and Specifications
13.4.3 Park Systems Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.4.4 Park Systems Main Business Overview
13.4.5 Park Systems Latest Developments
13.5 Nanoscience Instruments
13.5.1 Nanoscience Instruments Company Information
13.5.2 Nanoscience Instruments Atomic Force Microscopy Scan Product Portfolios and Specifications
13.5.3 Nanoscience Instruments Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.5.4 Nanoscience Instruments Main Business Overview
13.5.5 Nanoscience Instruments Latest Developments
13.6 Hitachi High Technologies America
13.6.1 Hitachi High Technologies America Company Information
13.6.2 Hitachi High Technologies America Atomic Force Microscopy Scan Product Portfolios and Specifications
13.6.3 Hitachi High Technologies America Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.6.4 Hitachi High Technologies America Main Business Overview
13.6.5 Hitachi High Technologies America Latest Developments
13.7 Anasys Instruments Corporation
13.7.1 Anasys Instruments Corporation Company Information
13.7.2 Anasys Instruments Corporation Atomic Force Microscopy Scan Product Portfolios and Specifications
13.7.3 Anasys Instruments Corporation Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.7.4 Anasys Instruments Corporation Main Business Overview
13.7.5 Anasys Instruments Corporation Latest Developments
13.8 JPK
13.8.1 JPK Company Information
13.8.2 JPK Atomic Force Microscopy Scan Product Portfolios and Specifications
13.8.3 JPK Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.8.4 JPK Main Business Overview
13.8.5 JPK Latest Developments
13.9 Nanosurf
13.9.1 Nanosurf Company Information
13.9.2 Nanosurf Atomic Force Microscopy Scan Product Portfolios and Specifications
13.9.3 Nanosurf Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.9.4 Nanosurf Main Business Overview
13.9.5 Nanosurf Latest Developments
13.10 Agilent
13.10.1 Agilent Company Information
13.10.2 Agilent Atomic Force Microscopy Scan Product Portfolios and Specifications
13.10.3 Agilent Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.10.4 Agilent Main Business Overview
13.10.5 Agilent Latest Developments
13.11 WITec
13.11.1 WITec Company Information
13.11.2 WITec Atomic Force Microscopy Scan Product Portfolios and Specifications
13.11.3 WITec Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.11.4 WITec Main Business Overview
13.11.5 WITec Latest Developments
13.12 Shimadzu
13.12.1 Shimadzu Company Information
13.12.2 Shimadzu Atomic Force Microscopy Scan Product Portfolios and Specifications
13.12.3 Shimadzu Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.12.4 Shimadzu Main Business Overview
13.12.5 Shimadzu Latest Developments
13.13 Scienta Omicron
13.13.1 Scienta Omicron Company Information
13.13.2 Scienta Omicron Atomic Force Microscopy Scan Product Portfolios and Specifications
13.13.3 Scienta Omicron Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.13.4 Scienta Omicron Main Business Overview
13.13.5 Scienta Omicron Latest Developments
13.14 AIST-NT
13.14.1 AIST-NT Company Information
13.14.2 AIST-NT Atomic Force Microscopy Scan Product Portfolios and Specifications
13.14.3 AIST-NT Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.14.4 AIST-NT Main Business Overview
13.14.5 AIST-NT Latest Developments
13.15 RHK Technology
13.15.1 RHK Technology Company Information
13.15.2 RHK Technology Atomic Force Microscopy Scan Product Portfolios and Specifications
13.15.3 RHK Technology Atomic Force Microscopy Scan Sales, Revenue, Price and Gross Margin (2020-2025)
13.15.4 RHK Technology Main Business Overview
13.15.5 RHK Technology Latest Developments
14 Research Findings and Conclusion
※参考情報 原子間力顕微鏡スキャン(Atomic Force Microscopy, AFM)は、ナノスケールの画像を取得し、物質の表面特性を高精度で解析するための重要な技術です。AFMは、1980年代に開発されて以来、材料科学、生物学、化学、エレクトロニクスなどの幅広い分野で利用されており、その特徴や強みから多くの研究者に支持されています。 AFMの基本的な概念は、非常に細いプローブ(通常はシリコンまたはシリコンナイトライド製)を用い、試料の表面に接触させて、その表面に作用する力を測定することです。プローブは、試料表面の上を走行しながら、表面の形状や特性を高精度で測定します。このプローブの動きは、微小な力が発生する原子間力に基づいており、これによりナノスケールの画像が取得されます。 AFMの特徴の一つは、その高解像度です。AFMは、原子レベルの解像度を持つため、表面の微細な構造や組成を詳細に把握することができます。他の顕微鏡技術と比較して、AFMは真空や特殊な条件を必要とせず、液体中や空気中での測定が可能です。これにより、生物試料などの湿った環境での観察が可能となり、さまざまな研究に応用されています。 種類については、AFMにはいくつかの変種があります。最も一般的なものは、接触モードAFMと非接触モードAFMです。接触モードAFMでは、プローブが試料に軽く接触し、表面の力を測定します。一方、非接触モードAFMは、プローブが試料から少し離れた位置で振動し、表面との相互作用を測定する技術です。これにより、試料へのダメージを最小限に抑えつつ、高速スキャンが可能となります。 さらに、高分解能AFMや引っ張り試験などの特殊なAFM技術も存在します。高分解能AFMは、ナノスケール以下の領域での超高解像度画像を取得するために、精密な制御を行います。引っ張り試験は、材料の機械的特性を評価するために用いられる技術で、ナノスケールでの強度や弾性を測定します。 AFMの用途は多岐にわたります。材料科学の分野では、ナノ材料の表面特性や構造解析に用いられ、結晶の成長過程や新しい材料の開発に貢献しています。生物学では、細胞の表面形状や膜の特性、タンパク質の相互作用などを調査するために利用されます。また、エレクトロニクスの分野では、半導体デバイスの微細加工や表面特性の評価において重要な役割を果たしています。 関連技術としては、走査型トンネル顕微鏡(STM)や走査型電子顕微鏡(SEM)などがあります。STMは、金属表面や半導体の原子構造を観察するための技術で、高い空間分解能を持っていますが、真空中での操作が必要です。SEMは、電子ビームを用いて試料の表面を観察する方法で、高い深度情報を得ることができますが、AFMのようにナノスケールでの力の測定は行いません。 AFMは、その多機能性と高解像度のおかげで、さまざまな分野での研究において信頼性の高いツールとなっています。新しい技術や材料の開発が進む中で、AFMはますます重要な役割を果たすことが期待されています。将来的には、より高精度で迅速な測定技術の進化により、新たな分野での応用が拡大することでしょう。これにより、原子間力顕微鏡の技術は今後の科学研究において、ますます革新的な貢献をしていくと考えられます。 |
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