1. 方法論と範囲
1.1. 調査方法
1.2. 調査目的と調査範囲
2. 定義と概要
3. エグゼクティブ・サマリー
3.1. タイプ別スニペット
3.2. センサー別スニペット
3.3. アプリケーション別スニペット
3.4. エンドユーザー別スニペット
3.5. 地域別スニペット
4. ダイナミクス
4.1. 影響要因
4.1.1. 推進要因
4.1.1.1. 技術の進歩とスマートインフラへの需要
4.1.1.2. ヘルスケアとセキュリティにおける需要の高まり
4.1.2. 阻害要因
4.1.2.1. 高い生産コストと規制上の制約
4.1.3. 機会
4.1.4. 影響分析
5. 産業分析
5.1. ポーターのファイブフォース分析
5.2. サプライチェーン分析
5.3. 価格分析
5.4. 規制分析
5.5. ロシア・ウクライナ戦争の影響分析
5.6. DMI意見
6. タイプ別
6.1. はじめに
6.1.1. 市場規模分析および前年比成長率分析(%), タイプ別
6.1.2. 市場魅力度指数(タイプ別
6.2. 真性センサー
6.2.1. 序論
6.2.2. 市場規模分析と前年比成長率分析(%)
6.3. 真性センサー
7. センサー別
7.1. はじめに
7.1.1. 市場規模分析と前年比成長率分析(%)、センサー別
7.1.2. 市場魅力度指数(センサー別
7.2. 光ファイバーセンサー
7.2.1. はじめに
7.2.2. 市場規模分析と前年比成長率分析(%)
7.3. 光電センサー
7.4. 光温度センサー
7.5. バイオメディカルセンサ
7.6. 変位・位置センサ
7.7. ポイントセンサー
7.8. その他
8. アプリケーション別
8.1. 導入
8.1.1. 用途別市場規模分析および前年比成長率分析(%)
8.1.2. 市場魅力度指数、用途別
8.2. 圧力・ひずみセンシング
8.2.1. はじめに
8.2.2. 市場規模分析と前年比成長率分析(%)
8.3. 環境・温度センシング
8.4. 地質調査
8.5. 生物化学
8.6. バイオメトリックとアンビエンス
8.7. その他
9. エンドユーザー別
9.1. はじめに
9.1.1. 市場規模分析および前年比成長率分析(%), エンドユーザー別
9.1.2. 市場魅力度指数、エンドユーザー別
9.2. 航空宇宙・防衛*市場
9.2.1. はじめに
9.2.2. 市場規模分析と前年比成長率分析(%)
9.3. ユーティリティ
9.4. 石油・ガス
9.5. 医療
9.6. 建設
9.7. 家電
9.8. その他
10. 持続可能性分析
10.1. 環境分析
10.2. 経済分析
10.3. ガバナンス分析
11. 地域別
11.1. はじめに
11.1.1. 地域別市場規模分析および前年比成長率分析(%)
11.1.2. 市場魅力度指数、地域別
11.2. 北米
11.2.1. 序論
11.2.2. 主な地域別ダイナミクス
11.2.3. 市場規模分析および前年比成長率分析(%), タイプ別
11.2.4. 市場規模分析とYoY成長率分析(%)、センサー別
11.2.5. 市場規模分析および前年比成長率分析 (%)、アプリケーション別
11.2.6. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.2.7. 市場規模分析および前年比成長率分析(%)、国別
11.2.7.1. 米国
11.2.7.2. カナダ
11.2.7.3. メキシコ
11.3. ヨーロッパ
11.3.1. はじめに
11.3.2. 主な地域別動向
11.3.3. 市場規模分析および前年比成長率分析(%), タイプ別
11.3.4. 市場規模分析とYoY成長率分析(%)、センサー別
11.3.5. 市場規模分析および前年比成長率分析 (%)、アプリケーション別
11.3.6. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.3.7. 市場規模分析および前年比成長率分析(%)、国別
11.3.7.1. ドイツ
11.3.7.2. イギリス
11.3.7.3. フランス
11.3.7.4. イタリア
11.3.7.5. スペイン
11.3.7.6. その他のヨーロッパ
11.4. 南米
11.4.1. はじめに
11.4.2. 地域別主要市場
11.4.3. 市場規模分析および前年比成長率分析(%), タイプ別
11.4.4. 市場規模分析とYoY成長率分析(%)、センサー別
11.4.5. 市場規模分析および前年比成長率分析 (%)、アプリケーション別
11.4.6. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.4.7. 市場規模分析および前年比成長率分析(%)、国別
11.4.7.1. ブラジル
11.4.7.2. アルゼンチン
11.4.7.3. その他の南米諸国
11.5. アジア太平洋
11.5.1. はじめに
11.5.2. 主な地域別ダイナミクス
11.5.3. 市場規模分析および前年比成長率分析(%), タイプ別
11.5.4. 市場規模分析とYoY成長率分析(%)、センサー別
11.5.5. 市場規模分析および前年比成長率分析 (%)、アプリケーション別
11.5.6. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.5.7. 市場規模分析および前年比成長率分析(%)、国別
11.5.7.1. 中国
11.5.7.2. インド
11.5.7.3. 日本
11.5.7.4. オーストラリア
11.5.7.5. その他のアジア太平洋地域
11.6. 中東・アフリカ
11.6.1. 序論
11.6.2. 主な地域別ダイナミクス
11.6.3. 市場規模分析および前年比成長率分析(%), タイプ別
11.6.4. 市場規模分析とYoY成長率分析(%)、センサー別
11.6.5. 市場規模分析および前年比成長率分析 (%)、アプリケーション別
11.6.6. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
12. 競合情勢
12.1.1. 競争シナリオ
12.1.2. 市場ポジショニング/シェア分析
12.1.3. M&A分析
13. 企業プロフィール
13.1. ROHM Semiconductor*
13.1.1. 会社概要
13.1.2. 製品ポートフォリオと内容
13.1.3. 財務概要
13.1.4. 主な展開
13.2. ABB
13.3. Hamamatsu Photonics
13.4. STMicroelectronics
13.5. Texas Instruments Inc.
13.6. OPTEK Technology Inc.
13.7. OMRON Corporation
13.8. Honeywell International Inc.
13.9. Eaton
13.10. Siemens
リストは網羅的ではありません
14. 付録
14.1. シーメンスについて
14.2. お問い合わせ
Global Optical Sensors Market reached US$ 21.08 billion in 2023 and is expected to reach US$ 45.26 billion by 2031, growing with a CAGR of 10.20% during the forecast period 2024-2031.
The optical sensors market is experiencing significant growth, driven by the rising demand for smart devices and applications in industrial automation, healthcare, automotive and security systems. Optical sensors, crucial for various applications, from environmental monitoring to enhancing security, detect and measure light properties. Factors such as the Internet of Things (IoT), Industry 4.0 initiatives and advancements in machine learning have catalyzed the adoption of these sensors, positioning the market for sustained growth.
Asia-Pacific is the market for optical sensors that is growing the fastest compared to other regions. The fast growth of industries such as consumer electronics, industrial, automobile and textile is playing a big role in the optical sensors market's expansion in the region. As per IBEF, the Indian appliances and consumer electronics sector was valued at US$ 9.84 billion and is projected to surpass US$ 21.18 billion by 2025, which triggered the more demand of opticak sensors in the country and region as well.
Dynamics
Technological Advancements and Smart Infrastructure
The global demand for optical sensors is increasingly fueled by advancements in automation and the shift toward smart infrastructure, particularly in urban areas. Advanced technologies such as IoT, AI and machine vision are increasing the importance of optical sensors for immediate data collection and decision-making. For instance, smart city initiatives supported by the United Nations' Sustainable Development Goals (SDGs) have underscored the need for sensor-driven environmental monitoring and traffic management systems, driving investments in optical sensor technologies.
The integration of optical sensors is emphasized by the European Union and national governments in the Industrial Internet of Things (IIoT) and Industry 4.0 initiatives to enhance operational efficiency and cut down on energy expenses. For example, the European Commission’s Horizon 2020 program allocates funding for innovative sensor solutions, positioning Europe as a leader in sensor-based automation for industry applications.
Growing Demand in Healthcare and Security
Optical sensors play a crucial role in healthcare and security due to the importance of precision, non-invasiveness and reliability. Applications in remote health monitoring, diagnostics and imaging are on the rise due to an aging global population and increased prevalence of chronic diseases. According to the World Health Organization (WHO), chronic diseases, also known as noncommunicable diseases (NCDs), account for 74% of all deaths worldwide, this figure expected to rise due to lifestyle and demographic changes. The sensors, which are used in medical devices for pulse oximetry, glucose monitoring and wearable health devices, provide immediate data that assist in prompt healthcare intervention.
In security, the adoption of optical sensors in surveillance, facial recognition and biometrics has become vital due to heightened security concerns and regulatory mandates worldwide. The U.S. Department of Homeland Security (DHS) and the European Union Agency for Cybersecurity (ENISA) have established rules to encourage sensor-based solutions for improved border and facility security.
High Production Costs and Regulatory Constraints
Despite the optimistic outlook, high production costs and regulatory complexities pose challenges to the market. The manufacture of advanced optical sensors involves significant capital investment due to the complexity of fabrication processes and the requirement for high-grade materials. The International Trade Centre (ITC) has noted that the high cost of optical sensors can limit adoption in cost-sensitive markets, particularly in developing economies.
Moreover, regulatory compliance is a major concern, especially in healthcare and automotive applications, where sensors must meet stringent safety and quality standards. Adhering to both the European Medical Device Regulation (MDR) and U.S. Food and Drug Administration (FDA) guidelines for medical devices can be time-consuming and resource-intensive, possibly hindering market entry.
Segment Analysis
The global optical sensors market is segmented based on type, sensor, application, End-User and region.
Demand for Environmental & Temperature Sensing due to Polution & Climate Change Concerns
Temperature and environmental sensing applications in optical sensors are experiencing high demand, driven by their critical role in monitoring air quality, water quality and pollutant levels. These sensors are crucial for a variety of industries and smart city initiatives that depend on up-to-the-minute data to uphold secure, eco-friendly settings.
In smart cities, they provide systems to manage traffic, increase energy efficiency and monitor the environment, helping to reduce pollution and enhance urban living. The precision of optical sensors in detecting temperature and pollutants also helps industries comply with environmental regulations, fostering safer working and public spaces.
According to the World Bank, air pollution costs the global economy approximately US$ 8.1 trillion annually, which equates to 6.1% of the world's GDP, primarily due to health-related expenses and productivity losses. The importance of using optical sensors in environmental applications is emphasized by this economic impact. The integration of temperature and environmental sensors in urban and industrial systems thus not only helps mitigate economic burdens but also promotes sustainability and healthier communities globally.
Geographical Penetration
Asia-Pacific Leading Growth with Technological Adoption
Asia-Pacific is one of the fastest-growing markets for optical sensors, driven by rapid industrialization, smart city initiatives and the expansion of electronics manufacturing. Countries like China, Japan and South Korea are investing heavily in semiconductor production and sensor technologies. The Asia-Pacific Economic Cooperation (APEC) has highlighted the region's ambition to lead the world in technology adoption and infrastructure development, particularly in the automotive and industrial sectors.
In China, the Made in China 2025 initiative has accelerated the adoption of high-tech manufacturing, including optical sensors, to reduce dependence on imports. Additionally, India's Digital India program has increased investments in smart cities. In August 2024, the Cabinet Committee on Economic Affairs of India approved 12 new smart city projects under this program, with an investment of $3.41 billion, where optical sensors play a pivotal role in applications like energy management and surveillance.
Competitive Landscape
The major global players in the market include ROHM Semiconductor, ABB, Hamamatsu Photonics, STMicroelectronics, Texas Instruments Inc., OPTEK Technology Inc., OMRON Corporation, Honeywell International Inc., Eaton and Siemens.
Sustainability Analysis
The optical sensors market is increasingly aligning with global sustainability goals, focusing on energy efficiency and resource optimization. Automated optical sensors in intelligent infrastructure initiatives decrease energy usage by supplying precise information on environmental conditions and adapting lighting, heating and cooling systems accordingly. US Department of Energy has noted that integrating sensors into building management systems can reduce energy use by up to 30%, making them essential for sustainable urban development.
Furthermore, Optical sensors in healthcare allow for accurate and non-invasive monitoring, decreasing the reliance on invasive diagnostic procedures and reducing waste. This aligns with the United Nations’ emphasis on sustainable healthcare practices, aiming to reduce the environmental impact of medical equipment and devices.
Russia-Ukraine War Impact
The Russia-Ukraine conflict has significantly disrupted global supply chains, impacting the optical sensors market due to Ukraine's critical role as a supplier of rare gases like neon, vital in semiconductor manufacturing. This interruption has caused a lack of essential materials, resulting in higher costs and delays in the production and distribution of optical sensors globally. Sensor manufacturers have experienced these effects, as the scarcity of key components has delayed timelines and raised operational costs, complicating efforts to meet rising demand in sectors such as healthcare, consumer electronics and automotive.
Furthermore, geopolitical instability has heightened cybersecurity concerns, leading to an increased demand for optical sensors in security applications. Optical sensors are integral to surveillance, biometrics and threat detection, which have become even more essential amid global tensions. Businesses and governments are increasing their spending on security infrastructure using optical sensor technology to detect and manage risks immediately. This shows a move towards bolstering national and corporate security defenses against rising cyber and physical threats.
By Type
• Extrinsic Sensor
• Intrinsic Sensor
By Sensor
• Fiber Optic Sensor
• Photoelectric Sensor
• Optical Temperature Sensors
• Biomedical Sensors
• Displacement & Position Sensors
• Point Sensors
• Others
By Application
• Pressure and Strain Sensing
• Environmental & Environmental & Temperature Sensing
• Geological Survey
• Biochemical
• Biometric and Ambience
• Others
By End-User
• Aerospace and Defense
• Utilities
• Oil and Gas
• Medical
• Construction
• Consumer Electronics
• Others
By Region
• North America
o US
o Canada
o Mexico
• Europe
o Germany
o UK
o France
o Italy
o Spain
o Rest of Europe
• South America
o Brazil
o Argentina
o Rest of South America
• Asia-Pacific
o China
o India
o Japan
o Australia
o Rest of Asia-Pacific
• Middle East and Africa
Key Developments
• In July 2023, ams OSRAM, a leading provider of optical solutions, introduced the TCS3530 color sensor, a state-of-the-art product aimed at significantly improving color accuracy in smartphone cameras. the TCS3530 assists displays in achieving more lifelike picture quality, showcasing ams OSRAM’s commitment to advancing sensor technology for superior consumer electronics experiences.
• In June 2023, Renesas Electronics Corporation, a leader in semiconductor innovation, successfully acquired Panthronics AG, a company recognized for its high-performance wireless technology. This strategic expansion not only strengthens Renesas’s position in the semiconductor market but also broadens its reach in the IoT and wireless sectors, positioning it for growth in wireless-enabled sensor solutions.
• In October 2022, Lumotive, in partnership with Gpixel, launched a new reference design platform combining 3D lidar and CMOS image sensors, aimed at fostering the development of advanced 3D lidar solutions for mobility and industrial applications. This platform, which integrates Gpixel's GTOF0503 indirect time-of-flight image sensor with Lumotive's LM10 beam-steering chip, provides an optimal solution for medium to long-range 3D applications, such as autonomous navigation in logistics environments.
Why Purchase the Report?
• To visualize the global optical sensors market segmentation based on type, sensor, application, end-user and region.
• Identify commercial opportunities by analyzing trends and co-development.
• Excel spreadsheet containing a comprehensive dataset of the optical sensors market, covering all levels of segmentation.
• PDF report consists of a comprehensive analysis after exhaustive qualitative interviews and an in-depth study.
• Product mapping available as excel consisting of key products of all the major players.
The global optical sensors market report would provide approximately 70 tables, 72 figures and 209 pages.
Target Audience 2024
• Manufacturers/ Buyers
• Industry Investors/Investment Bankers
• Research Professionals
• Emerging Companies
1. Methodology and Scope
1.1. Research Methodology
1.2. Research Objective and Scope of the Report
2. Definition and Overview
3. Executive Summary
3.1. Snippet by Type
3.2. Snippet by Sensor
3.3. Snippet by Application
3.4. Snippet by End-User
3.5. Snippet by Region
4. Dynamics
4.1. Impacting Factors
4.1.1. Drivers
4.1.1.1. Technological Advancements and Demand for Smart Infrastructure
4.1.1.2. Rising Demand in Healthcare and Security
4.1.2. Restraints
4.1.2.1. High Production Costs and Regulatory Constraints
4.1.3. Opportunity
4.1.4. Impact Analysis
5. Industry Analysis
5.1. Porter's Five Force Analysis
5.2. Supply Chain Analysis
5.3. Pricing Analysis
5.4. Regulatory Analysis
5.5. Russia-Ukraine War Impact Analysis
5.6. DMI Opinion
6. By Type
6.1. Introduction
6.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
6.1.2. Market Attractiveness Index, By Type
6.2. Extrinsic Sensor*
6.2.1. Introduction
6.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
6.3. Intrinsic Sensor
7. By Sensor
7.1. Introduction
7.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
7.1.2. Market Attractiveness Index, By Sensor
7.2. Fiber Optic Sensor*
7.2.1. Introduction
7.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
7.3. Photoelectric Sensor
7.4. Optical Temperature Sensors
7.5. Biomedical Sensors
7.6. Displacement & Position Sensors
7.7. Point Sensors
7.8. Others
8. By Application
8.1. Introduction
8.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
8.1.2. Market Attractiveness Index, By Application
8.2. Pressure and Strain Sensing*
8.2.1. Introduction
8.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
8.3. Environmental & Environmental & Temperature Sensing
8.4. Geological Survey
8.5. Biochemical
8.6. Biometric and Ambience
8.7. Others
9. By End-User
9.1. Introduction
9.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
9.1.2. Market Attractiveness Index, By End-User
9.2. Aerospace and Defense*
9.2.1. Introduction
9.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
9.3. Utilities
9.4. Oil and Gas
9.5. Medical
9.6. Construction
9.7. Consumer Electronics
9.8. Others
10. Sustainability Analysis
10.1. Environmental Analysis
10.2. Economic Analysis
10.3. Governance Analysis
11. By Region
11.1. Introduction
11.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Region
11.1.2. Market Attractiveness Index, By Region
11.2. North America
11.2.1. Introduction
11.2.2. Key Region-Specific Dynamics
11.2.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.2.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
11.2.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
11.2.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.2.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.2.7.1. US
11.2.7.2. Canada
11.2.7.3. Mexico
11.3. Europe
11.3.1. Introduction
11.3.2. Key Region-Specific Dynamics
11.3.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.3.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
11.3.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
11.3.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.3.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.3.7.1. Germany
11.3.7.2. UK
11.3.7.3. France
11.3.7.4. Italy
11.3.7.5. Spain
11.3.7.6. Rest of Europe
11.4. South America
11.4.1. Introduction
11.4.2. Key Region-Specific Dynamics
11.4.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.4.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
11.4.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
11.4.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.4.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.4.7.1. Brazil
11.4.7.2. Argentina
11.4.7.3. Rest of South America
11.5. Asia-Pacific
11.5.1. Introduction
11.5.2. Key Region-Specific Dynamics
11.5.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.5.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
11.5.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
11.5.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.5.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.5.7.1. China
11.5.7.2. India
11.5.7.3. Japan
11.5.7.4. Australia
11.5.7.5. Rest of Asia-Pacific
11.6. Middle East and Africa
11.6.1. Introduction
11.6.2. Key Region-Specific Dynamics
11.6.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.6.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Sensor
11.6.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
11.6.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
12. Competitive Landscape
12.1.1. Competitive Scenario
12.1.2. Market Positioning/Share Analysis
12.1.3. Mergers and Acquisitions Analysis
13. Company Profiles
13.1. ROHM Semiconductor*
13.1.1. Company Overview
13.1.2. Type Portfolio and Description
13.1.3. Financial Overview
13.1.4. Key Developments
13.2. ABB
13.3. Hamamatsu Photonics
13.4. STMicroelectronics
13.5. Texas Instruments Inc.
13.6. OPTEK Technology Inc.
13.7. OMRON Corporation
13.8. Honeywell International Inc.
13.9. Eaton
13.10. Siemens
LIST NOT EXHAUSTIVE
14. Appendix
14.1. About Us and Services
14.2. Contact Us
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