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 Radiation (IR) Emitter and Receiver Annual Sales 2018-2029
2.1.2 World Current & Future Analysis for Infrared Radiation (IR) Emitter and Receiver by Geographic Region, 2018, 2022 & 2029
2.1.3 World Current & Future Analysis for Infrared Radiation (IR) Emitter and Receiver by Country/Region, 2018, 2022 & 2029
2.2 Infrared Radiation (IR) Emitter and Receiver Segment by Type
2.2.1 Long Wave (LWIR)
2.2.2 Short Wave IR (SWIR)
2.2.3 Far Wave (FWIR)
2.2.4 Mid Wave IR (MWIR)
2.3 Infrared Radiation (IR) Emitter and Receiver Sales by Type
2.3.1 Global Infrared Radiation (IR) Emitter and Receiver Sales Market Share by Type (2018-2023)
2.3.2 Global Infrared Radiation (IR) Emitter and Receiver Revenue and Market Share by Type (2018-2023)
2.3.3 Global Infrared Radiation (IR) Emitter and Receiver Sale Price by Type (2018-2023)
2.4 Infrared Radiation (IR) Emitter and Receiver Segment by Application
2.4.1 Consumer Electronics
2.4.2 IR Cameras and Sensors
2.4.3 Others
2.5 Infrared Radiation (IR) Emitter and Receiver Sales by Application
2.5.1 Global Infrared Radiation (IR) Emitter and Receiver Sale Market Share by Application (2018-2023)
2.5.2 Global Infrared Radiation (IR) Emitter and Receiver Revenue and Market Share by Application (2018-2023)
2.5.3 Global Infrared Radiation (IR) Emitter and Receiver Sale Price by Application (2018-2023)
3 Global Infrared Radiation (IR) Emitter and Receiver by Company
3.1 Global Infrared Radiation (IR) Emitter and Receiver Breakdown Data by Company
3.1.1 Global Infrared Radiation (IR) Emitter and Receiver Annual Sales by Company (2018-2023)
3.1.2 Global Infrared Radiation (IR) Emitter and Receiver Sales Market Share by Company (2018-2023)
3.2 Global Infrared Radiation (IR) Emitter and Receiver Annual Revenue by Company (2018-2023)
3.2.1 Global Infrared Radiation (IR) Emitter and Receiver Revenue by Company (2018-2023)
3.2.2 Global Infrared Radiation (IR) Emitter and Receiver Revenue Market Share by Company (2018-2023)
3.3 Global Infrared Radiation (IR) Emitter and Receiver Sale Price by Company
3.4 Key Manufacturers Infrared Radiation (IR) Emitter and Receiver Producing Area Distribution, Sales Area, Product Type
3.4.1 Key Manufacturers Infrared Radiation (IR) Emitter and Receiver Product Location Distribution
3.4.2 Players Infrared Radiation (IR) Emitter and Receiver 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 Radiation (IR) Emitter and Receiver by Geographic Region
4.1 World Historic Infrared Radiation (IR) Emitter and Receiver Market Size by Geographic Region (2018-2023)
4.1.1 Global Infrared Radiation (IR) Emitter and Receiver Annual Sales by Geographic Region (2018-2023)
4.1.2 Global Infrared Radiation (IR) Emitter and Receiver Annual Revenue by Geographic Region (2018-2023)
4.2 World Historic Infrared Radiation (IR) Emitter and Receiver Market Size by Country/Region (2018-2023)
4.2.1 Global Infrared Radiation (IR) Emitter and Receiver Annual Sales by Country/Region (2018-2023)
4.2.2 Global Infrared Radiation (IR) Emitter and Receiver Annual Revenue by Country/Region (2018-2023)
4.3 Americas Infrared Radiation (IR) Emitter and Receiver Sales Growth
4.4 APAC Infrared Radiation (IR) Emitter and Receiver Sales Growth
4.5 Europe Infrared Radiation (IR) Emitter and Receiver Sales Growth
4.6 Middle East & Africa Infrared Radiation (IR) Emitter and Receiver Sales Growth
5 Americas
5.1 Americas Infrared Radiation (IR) Emitter and Receiver Sales by Country
5.1.1 Americas Infrared Radiation (IR) Emitter and Receiver Sales by Country (2018-2023)
5.1.2 Americas Infrared Radiation (IR) Emitter and Receiver Revenue by Country (2018-2023)
5.2 Americas Infrared Radiation (IR) Emitter and Receiver Sales by Type
5.3 Americas Infrared Radiation (IR) Emitter and Receiver Sales by Application
5.4 United States
5.5 Canada
5.6 Mexico
5.7 Brazil
6 APAC
6.1 APAC Infrared Radiation (IR) Emitter and Receiver Sales by Region
6.1.1 APAC Infrared Radiation (IR) Emitter and Receiver Sales by Region (2018-2023)
6.1.2 APAC Infrared Radiation (IR) Emitter and Receiver Revenue by Region (2018-2023)
6.2 APAC Infrared Radiation (IR) Emitter and Receiver Sales by Type
6.3 APAC Infrared Radiation (IR) Emitter and Receiver 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 Radiation (IR) Emitter and Receiver by Country
7.1.1 Europe Infrared Radiation (IR) Emitter and Receiver Sales by Country (2018-2023)
7.1.2 Europe Infrared Radiation (IR) Emitter and Receiver Revenue by Country (2018-2023)
7.2 Europe Infrared Radiation (IR) Emitter and Receiver Sales by Type
7.3 Europe Infrared Radiation (IR) Emitter and Receiver 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 Radiation (IR) Emitter and Receiver by Country
8.1.1 Middle East & Africa Infrared Radiation (IR) Emitter and Receiver Sales by Country (2018-2023)
8.1.2 Middle East & Africa Infrared Radiation (IR) Emitter and Receiver Revenue by Country (2018-2023)
8.2 Middle East & Africa Infrared Radiation (IR) Emitter and Receiver Sales by Type
8.3 Middle East & Africa Infrared Radiation (IR) Emitter and Receiver 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 Radiation (IR) Emitter and Receiver
10.3 Manufacturing Process Analysis of Infrared Radiation (IR) Emitter and Receiver
10.4 Industry Chain Structure of Infrared Radiation (IR) Emitter and Receiver
11 Marketing, Distributors and Customer
11.1 Sales Channel
11.1.1 Direct Channels
11.1.2 Indirect Channels
11.2 Infrared Radiation (IR) Emitter and Receiver Distributors
11.3 Infrared Radiation (IR) Emitter and Receiver Customer
12 World Forecast Review for Infrared Radiation (IR) Emitter and Receiver by Geographic Region
12.1 Global Infrared Radiation (IR) Emitter and Receiver Market Size Forecast by Region
12.1.1 Global Infrared Radiation (IR) Emitter and Receiver Forecast by Region (2024-2029)
12.1.2 Global Infrared Radiation (IR) Emitter and Receiver 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 Radiation (IR) Emitter and Receiver Forecast by Type
12.7 Global Infrared Radiation (IR) Emitter and Receiver Forecast by Application
13 Key Players Analysis
13.1 Excelitas Technologies
13.1.1 Excelitas Technologies Company Information
13.1.2 Excelitas Technologies Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.1.3 Excelitas Technologies Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.1.4 Excelitas Technologies Main Business Overview
13.1.5 Excelitas Technologies Latest Developments
13.2 FLIR Systems
13.2.1 FLIR Systems Company Information
13.2.2 FLIR Systems Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.2.3 FLIR Systems Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.2.4 FLIR Systems Main Business Overview
13.2.5 FLIR Systems Latest Developments
13.3 Honeywell International
13.3.1 Honeywell International Company Information
13.3.2 Honeywell International Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.3.3 Honeywell International Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.3.4 Honeywell International Main Business Overview
13.3.5 Honeywell International Latest Developments
13.4 Murata Manufacturing
13.4.1 Murata Manufacturing Company Information
13.4.2 Murata Manufacturing Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.4.3 Murata Manufacturing Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.4.4 Murata Manufacturing Main Business Overview
13.4.5 Murata Manufacturing Latest Developments
13.5 Hamamatsu Photonics
13.5.1 Hamamatsu Photonics Company Information
13.5.2 Hamamatsu Photonics Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.5.3 Hamamatsu Photonics Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.5.4 Hamamatsu Photonics Main Business Overview
13.5.5 Hamamatsu Photonics Latest Developments
13.6 Leonardo DRS
13.6.1 Leonardo DRS Company Information
13.6.2 Leonardo DRS Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.6.3 Leonardo DRS Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.6.4 Leonardo DRS Main Business Overview
13.6.5 Leonardo DRS Latest Developments
13.7 OSRAM Opto Semiconductors
13.7.1 OSRAM Opto Semiconductors Company Information
13.7.2 OSRAM Opto Semiconductors Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.7.3 OSRAM Opto Semiconductors Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.7.4 OSRAM Opto Semiconductors Main Business Overview
13.7.5 OSRAM Opto Semiconductors Latest Developments
13.8 Sofradir
13.8.1 Sofradir Company Information
13.8.2 Sofradir Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.8.3 Sofradir Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.8.4 Sofradir Main Business Overview
13.8.5 Sofradir Latest Developments
13.9 Texas Instruments
13.9.1 Texas Instruments Company Information
13.9.2 Texas Instruments Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.9.3 Texas Instruments Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.9.4 Texas Instruments Main Business Overview
13.9.5 Texas Instruments Latest Developments
13.10 Vishay Intertechnology
13.10.1 Vishay Intertechnology Company Information
13.10.2 Vishay Intertechnology Infrared Radiation (IR) Emitter and Receiver Product Portfolios and Specifications
13.10.3 Vishay Intertechnology Infrared Radiation (IR) Emitter and Receiver Sales, Revenue, Price and Gross Margin (2018-2023)
13.10.4 Vishay Intertechnology Main Business Overview
13.10.5 Vishay Intertechnology Latest Developments
14 Research Findings and Conclusion
※参考情報 赤外線エミッターおよびレシーバーは、赤外線(IR)光を利用して情報の送受信を行うデバイスです。赤外線は、波長が可視光線よりも長く、通常は0.75マイクロメートルから1ミリメートルの範囲にある電磁波です。この範囲は、目には見えませんが、熱を持つ物体が発する輻射として広く知られています。赤外線技術は、さまざまな分野で利用されており、無線通信やリモコン技術、センサー技術など、多岐にわたる応用が存在します。 赤外線エミッターは、赤外線を放出するデバイスであり、一般的にはLED(発光ダイオード)として実現されます。これらのLEDは、電流が流れると発光し、赤外線を発生させます。エミッターの特徴としては、低消費電力、高い応答速度、そして耐久性のある構造が挙げられます。一般的な赤外線エミッターは、特定の波長(通常は850nmから950nm)での放射を行います。特に家庭用リモコンなどでよく見られるのは、約940nmの波長の赤外線です。 一方、赤外線レシーバーは、赤外線信号を受信し、それを適切なデジタル信号に変換する役割を持つデバイスです。通常、フォトダイオードやフォトトランジスタといった光センサーが用いられ、これらは赤外線の光を受けると電子信号を発生します。この信号は、さらにデジタル信号処理回路を通じて、意味のある情報に変換されます。レシーバーの性能は、感度、動作距離、応答速度などによって決まります。 赤外線エミッターおよびレシーバーの種類には、主にアナログ式とデジタル式があります。アナログ式は、連続的な信号を利用し、変化する情報を直接反映させることができるのが特徴です。一方、デジタル式は、特定のパターンやコードを用いて情報を送受信するため、エラー訂正機能なども組み込むことが可能です。このため、デジタル方式は、一般的に通信の安定性が高く、改ざんに対する耐性も強化されています。 赤外線エミッターとレシーバーの用途は多岐にわたります。最も一般的な用途の一つがリモコンです。テレビやエアコン、オーディオ機器などの操作には、赤外線リモコンが広く利用されています。この場合、ボタンを押すことで特定の赤外線信号がエミッターから放出され、それをレシーバーが受信して、機器の動作を制御します。 さらに、赤外線技術はセンサー技術にも活用されています。例えば、赤外線センサーは、人や物体の動きを検知するために使用されます。これは、防犯システムや自動ドア、さらには自動照明システムなどに応用されています。また、医療分野では赤外線を利用した非接触温度測定が行われており、風邪やインフルエンザの患者の体温を素早く測定するために使用されています。 赤外線通信は、光の直進性を利用しているため、障害物がない環境で高い通信速度を実現できる反面、障害物によって信号が遮られるという欠点もあります。しかし、この特性を生かして、特定の用途では非常に効果的な通信手段となります。例えば、近距離無線通信や、赤外線を利用したデータ転送技術が適用される場面では、高速かつ高いセキュリティを実現できます。 関連技術としては、BluetoothやWi-Fiなどの無線通信技術と比較されることがよくあります。これらの無線技術は、より広範囲での通信が可能ですが、周波数の混雑などの影響を受けやすいという側面があります。それに対して、赤外線は周囲の電磁波の影響を受けにくく、特定の範囲内で安定した通信を行うことが可能です。また、BluetoothやWi-Fiと違い、赤外線通信は直接見える範囲内での通信に特化しているため、セキュリティ上の利点もあります。 今後の赤外線エミッターおよびレシーバーの技術は、さらなる発展が期待されます。新素材や新技術を活用することで、より高性能なデバイスが開発されることが予想されます。また、IoT(モノのインターネット)が進展する中で、赤外線通信は特定の応用分野において重要な役割を果たすことでしょう。例えば、家庭内のスマートデバイス同士の通信手段としても、赤外線技術が再評価される可能性があります。 最後に、赤外線エミッターとレシーバーは、今後の技術革新によってさらに多様な用途が開拓される可能性があります。赤外線技術は、私たちの生活を快適にし、効率化するための重要な要素として、引き続き重要な位置を占めるでしょう。 |