
Global Laboratory Robotics Market - 2025-2033
Description
Laboratory Robotics Market: Industry Outlook
Laboratory Robotics Market reached US$ 2.48 Billion in 2024 and is expected to reach US$ 4.44 Billion by 2033, growing at a CAGR of 6.7% during the forecast period 2025-2033.
The laboratory robotics market is experiencing significant growth due to the increasing demand for automation in research and diagnostic laboratories, particularly in pharmaceutical, biotechnology, and healthcare sectors. Technological advancements, such as artificial intelligence, machine learning, and miniaturized robotic systems, are improving efficiency, accuracy, and scalability in laboratory processes.
The North America region is emerging as a key growth hub due to industrialization, R&D investments, and healthcare infrastructure expansion. Despite challenges like high initial capital investment and complex integration, the market holds strong opportunities in emerging markets, customized robotic solutions, and AI integration.
Laboratory Robotics Market Dynamics: Drivers & Restraints
Driver: Rise in the technological advancements
The laboratory robotics market is being driven by technological advancements, particularly the integration of artificial intelligence, machine learning, and advanced sensor technologies. These innovations enable robots to perform complex tasks with greater precision and efficiency, reducing human error and streamlining workflows. AI-driven robotic systems can optimize pipetting protocols and analyze data for quality control, providing unmatched decision-making support in research environments.
The miniaturization of robotic components and user-friendly interfaces have made laboratory robotics more accessible to a wider range of laboratories, including those with limited space and technical expertise. These advancements not only improve efficiency but also accelerate research and development processes, particularly in fields like drug discovery and genomics.
For instance, in January 2025, ABB and Agilent are partnering to enhance laboratory operations across various sectors, including pharma, biotechnology, energy, and food and beverage, by combining their technologies for faster and more efficient research and quality control processes. Agilent's advanced analytical instrumentation and laboratory software solutions will be combined with ABB's robotics, enhancing laboratory efficiency, precision, and flexibility.
Restraint: High initial investment and maintenance costs
The laboratory robotics market faces significant challenges due to high initial investment and ongoing maintenance costs. Implementing robotic automation requires substantial capital expenditure for advanced equipment, infrastructure modifications, and software integration, which can be prohibitive for small and mid-sized laboratories or institutions with limited budgets.
Maintaining and servicing complex robotic systems requires specialized technical expertise and additional operational expenses, impacting the return on investment and slowing the widespread adoption of laboratory robotics, especially in cost-sensitive markets.
Laboratory Robotics Market Segment Analysis
The global laboratory robotics market is segmented based on product type, application, end user, and region.
Product Type
The automated liquid handling systems segment from the product type is expected to hold 38.46% of the laboratory robotics market
The automated liquid handling systems segment dominates the laboratory robotics market, enhancing workflows, reducing human error, and increasing throughput. These systems are crucial in high-throughput screening, genomics, proteomics, and drug discovery applications.
The integration of advanced technologies like artificial intelligence and robotic arms enhances their adaptability and accuracy. They also support miniaturization of assays, reducing reagent costs and environmental waste. As laboratories prioritize efficiency, reproducibility, and scalability, demand for these systems continues to rise.
For instance, in January 2025, Tecan, a global leader in laboratory automation, unveiled Veya, a liquid handling platform designed to enhance efficiency, precision, and compliance in laboratories of all sizes. The platform was showcased at the Society for Laboratory Automation and Screening international conference in San Diego.
Laboratory Robotics Market Geographical Analysis
North America dominated the global laboratory robotics market with the highest share of 42.3% in 2024
North America dominates the laboratory robotics market due to product launches, automation investments, and innovation in pharmaceutical and biotechnology sectors. Key players, research institutions, and universities adopt robotic systems for efficiency improvement. Government initiatives, funding, and early AI adoption accelerate market growth. Demand for high-throughput screening and drug discovery solutions drives the adoption of laboratory robotics across various industries.
For instance, in January 2025, Trilobio showcased its first version of its comprehensive robotics, lab equipment, and software platform at the Society for Laboratory Automation and Screening conference, demonstrating its capabilities in enhancing research workflows.
Moreover, in May 2024, Clarapath, a medical robotics company, partnered with the Mayo Clinic to automate tissue sectioning, transfer, and quality control using robotics and AI, aiming to address labor shortages, quality control issues, and rising sample volumes.
Asia-Pacific is the global laboratory robotics market with a market share of 19.5% in 2024.
The Asia-Pacific laboratory robotics market is fueled by rapid industrialization, expanding pharmaceutical and biotechnology sectors, and healthcare infrastructure investments. Countries like China, India, Japan, and South Korea are experiencing increased demand for high-throughput laboratory processes due to R&D activities and a surge in chronic and infectious diseases.
Government initiatives promoting automation and digital transformation in labs are also contributing to market growth. The region's skilled professionals and lower manufacturing costs make it an attractive hub for advanced laboratory automation solutions.
For instance, in November 2024, Microsoft opened its first research and development center in Japan, Microsoft Research Asia Tokyo, integrating AI with robotics to advance research in manufacturing, healthcare, and societal applications, as part of its global AI research network.
Laboratory Robotics Market - Key Players
The major global players in the laboratory robotics market include ABB Ltd, Thermo Fisher Scientific Inc, Yaskawa Electric Corporation, KUKA AG, Festo AG & Co. KG, Universal Robots, Tecan Group Ltd, Hamilton Company, Hudson Robotics, Peak Analysis & Automation (PAA), and among others.
Key Developments
In April 2025, Covestro plans to open a state-of-the-art automated lab in 2025 to optimize coating and adhesive formulations, focusing on digitalization, circular materials, and customer-specific testing, with tens of thousands of annual tests.
In February 2025, Opentrons Labworks has launched an automation marketplace that offers tools and software from its partners for integration into their robotics systems, catering to sectors like drug discovery and microbiome research, and functions as an eCommerce hub.
Laboratory Robotics Market reached US$ 2.48 Billion in 2024 and is expected to reach US$ 4.44 Billion by 2033, growing at a CAGR of 6.7% during the forecast period 2025-2033.
The laboratory robotics market is experiencing significant growth due to the increasing demand for automation in research and diagnostic laboratories, particularly in pharmaceutical, biotechnology, and healthcare sectors. Technological advancements, such as artificial intelligence, machine learning, and miniaturized robotic systems, are improving efficiency, accuracy, and scalability in laboratory processes.
The North America region is emerging as a key growth hub due to industrialization, R&D investments, and healthcare infrastructure expansion. Despite challenges like high initial capital investment and complex integration, the market holds strong opportunities in emerging markets, customized robotic solutions, and AI integration.
Laboratory Robotics Market Dynamics: Drivers & Restraints
Driver: Rise in the technological advancements
The laboratory robotics market is being driven by technological advancements, particularly the integration of artificial intelligence, machine learning, and advanced sensor technologies. These innovations enable robots to perform complex tasks with greater precision and efficiency, reducing human error and streamlining workflows. AI-driven robotic systems can optimize pipetting protocols and analyze data for quality control, providing unmatched decision-making support in research environments.
The miniaturization of robotic components and user-friendly interfaces have made laboratory robotics more accessible to a wider range of laboratories, including those with limited space and technical expertise. These advancements not only improve efficiency but also accelerate research and development processes, particularly in fields like drug discovery and genomics.
For instance, in January 2025, ABB and Agilent are partnering to enhance laboratory operations across various sectors, including pharma, biotechnology, energy, and food and beverage, by combining their technologies for faster and more efficient research and quality control processes. Agilent's advanced analytical instrumentation and laboratory software solutions will be combined with ABB's robotics, enhancing laboratory efficiency, precision, and flexibility.
Restraint: High initial investment and maintenance costs
The laboratory robotics market faces significant challenges due to high initial investment and ongoing maintenance costs. Implementing robotic automation requires substantial capital expenditure for advanced equipment, infrastructure modifications, and software integration, which can be prohibitive for small and mid-sized laboratories or institutions with limited budgets.
Maintaining and servicing complex robotic systems requires specialized technical expertise and additional operational expenses, impacting the return on investment and slowing the widespread adoption of laboratory robotics, especially in cost-sensitive markets.
Laboratory Robotics Market Segment Analysis
The global laboratory robotics market is segmented based on product type, application, end user, and region.
Product Type
The automated liquid handling systems segment from the product type is expected to hold 38.46% of the laboratory robotics market
The automated liquid handling systems segment dominates the laboratory robotics market, enhancing workflows, reducing human error, and increasing throughput. These systems are crucial in high-throughput screening, genomics, proteomics, and drug discovery applications.
The integration of advanced technologies like artificial intelligence and robotic arms enhances their adaptability and accuracy. They also support miniaturization of assays, reducing reagent costs and environmental waste. As laboratories prioritize efficiency, reproducibility, and scalability, demand for these systems continues to rise.
For instance, in January 2025, Tecan, a global leader in laboratory automation, unveiled Veya, a liquid handling platform designed to enhance efficiency, precision, and compliance in laboratories of all sizes. The platform was showcased at the Society for Laboratory Automation and Screening international conference in San Diego.
Laboratory Robotics Market Geographical Analysis
North America dominated the global laboratory robotics market with the highest share of 42.3% in 2024
North America dominates the laboratory robotics market due to product launches, automation investments, and innovation in pharmaceutical and biotechnology sectors. Key players, research institutions, and universities adopt robotic systems for efficiency improvement. Government initiatives, funding, and early AI adoption accelerate market growth. Demand for high-throughput screening and drug discovery solutions drives the adoption of laboratory robotics across various industries.
For instance, in January 2025, Trilobio showcased its first version of its comprehensive robotics, lab equipment, and software platform at the Society for Laboratory Automation and Screening conference, demonstrating its capabilities in enhancing research workflows.
Moreover, in May 2024, Clarapath, a medical robotics company, partnered with the Mayo Clinic to automate tissue sectioning, transfer, and quality control using robotics and AI, aiming to address labor shortages, quality control issues, and rising sample volumes.
Asia-Pacific is the global laboratory robotics market with a market share of 19.5% in 2024.
The Asia-Pacific laboratory robotics market is fueled by rapid industrialization, expanding pharmaceutical and biotechnology sectors, and healthcare infrastructure investments. Countries like China, India, Japan, and South Korea are experiencing increased demand for high-throughput laboratory processes due to R&D activities and a surge in chronic and infectious diseases.
Government initiatives promoting automation and digital transformation in labs are also contributing to market growth. The region's skilled professionals and lower manufacturing costs make it an attractive hub for advanced laboratory automation solutions.
For instance, in November 2024, Microsoft opened its first research and development center in Japan, Microsoft Research Asia Tokyo, integrating AI with robotics to advance research in manufacturing, healthcare, and societal applications, as part of its global AI research network.
Laboratory Robotics Market - Key Players
The major global players in the laboratory robotics market include ABB Ltd, Thermo Fisher Scientific Inc, Yaskawa Electric Corporation, KUKA AG, Festo AG & Co. KG, Universal Robots, Tecan Group Ltd, Hamilton Company, Hudson Robotics, Peak Analysis & Automation (PAA), and among others.
Key Developments
In April 2025, Covestro plans to open a state-of-the-art automated lab in 2025 to optimize coating and adhesive formulations, focusing on digitalization, circular materials, and customer-specific testing, with tens of thousands of annual tests.
In February 2025, Opentrons Labworks has launched an automation marketplace that offers tools and software from its partners for integration into their robotics systems, catering to sectors like drug discovery and microbiome research, and functions as an eCommerce hub.
Table of Contents
180 Pages
- 1. Market Introduction and Scope
- 1.1. Objectives of the Report
- 1.2. Report Coverage & Definitions
- 1.3. Report Scope
- 2. Executive Insights and Key Takeaways
- 3. Market Highlights and Strategic Takeaways
- 3.1. Key Trends and Future Projections
- 4. Snippet by Product Type
- 4.1. Snippet by Application
- 4.2. Snippet by End User
- 4.3. Snippet by Region
- 5. Dynamics
- 5.1. Impacting Factors
- 5.1.1. Drivers
- 5.1.1.1. Rise in the technological advancements
- 5.1.1.2. Increase automation in laboratories
- 5.1.1.3. Demand for high-throughput screening (HTS)
- 5.1.2. Restraints
- 5.1.2.1. High initial investment and maintenance costs
- 5.1.2.2. Complexity and integration challenges
- 5.1.2.3. Regulatory challenges
- 5.1.3. Opportunity
- 5.1.3.1. Integration with Artificial Intelligence (AI)
- 5.1.3.2. Expansion in emerging markets
- 5.1.4. Impact Analysis
- 6. Strategic Insights and Industry Outlook
- 6.1. Market Leaders and Pioneers
- 6.1.1. Emerging Pioneers and Prominent Players
- 6.1.2. Established leaders with largest largest-selling Brand
- 6.1.3. Market leaders with established products & Services
- 6.2. Latest Developments and Breakthroughs
- 6.3. Regulatory and Reimbursement Landscape
- 6.3.1. North America
- 6.3.2. Europe
- 6.3.3. Asia Pacific
- 6.3.4. South America
- 6.3.5. Middle East & Africa
- 6.4. Porter’s Five Force Analysis
- 6.5. Supply Chain Analysis
- 6.6. Patent Analysis
- 6.7. SWOT Analysis
- 6.8. Unmet Needs and Gaps
- 6.9. Recommended Strategies for Market Entry and Expansion
- 6.10. Pricing Analysis and Price Dynamics
- 7. Global Laboratory Robotics Market, By Product Type
- 7.1. Introduction
- 7.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product Type
- 7.1.2. Market Attractiveness Index, By Product Type
- 7.2. Automated Liquid Handling Systems*
- 7.2.1. Introduction
- 7.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
- 7.3. Robotic Arms
- 7.4. Microplate Washers
- 7.5. Grippers
- 7.6. Robot-Assisted Liquid Handlers
- 7.7. Others
- 8. Global Laboratory Robotics Market, 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. Drug Discovery*
- 8.2.1. Introduction
- 8.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
- 8.3. Diagnostics
- 8.4. Genomics
- 8.5. Proteomics
- 8.6. Clinical and Research Laboratories
- 8.7. Chemical and Pharmaceutical Industries
- 9. Global Laboratory Robotics Market, 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. Pharmaceutical and Biotechnology Companies*
- 9.2.1. Introduction
- 9.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
- 9.3. Healthcare Institutions
- 9.4. Academic and Research Institutions
- 10. Global Laboratory Robotics Market Regional Market Analysis and Growth Opportunities
- 11. Introduction
- 11.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Region
- 11.1.1. 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 Product Type
- 11.2.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
- 11.2.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
- 11.2.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
- 11.2.6.1. U.S.
- 11.2.6.2. Canada
- 11.2.6.3. 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 Product Type
- 11.3.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
- 11.3.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
- 11.3.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
- 11.3.6.1. Germany
- 11.3.6.2. U.K.
- 11.3.6.3. France
- 11.3.6.4. Spain
- 11.3.6.5. Italy
- 11.3.6.6. 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 Product Type
- 11.4.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
- 11.4.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
- 11.4.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
- 11.4.6.1. Brazil
- 11.4.6.2. Argentina
- 11.4.6.3. 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 Product Type
- 11.5.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
- 11.5.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
- 11.5.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
- 11.5.6.1. China
- 11.5.6.2. India
- 11.5.6.3. Japan
- 11.5.6.4. South Korea
- 11.5.6.5. 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 Product Type
- 11.6.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Application
- 11.6.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
- 12. Competitive Landscape and Market Positioning
- 13. Competitive Overview and Key Market Players
- 13.1. Market Share Analysis and Positioning Matrix
- 13.2. Strategic Partnerships, Mergers & Acquisitions
- 13.3. Key Developments in Product Portfolios and Innovations
- 13.4. Company Benchmarking
- 14. Company Profiles
- 14.1. ABB Ltd*
- 14.1.1. Company Overview
- 14.1.2. Company Overview
- 14.1.3. Product Portfolio
- 14.1.3.1. Product Description
- 14.1.3.2. Product Key Performance Indicators (KPIs)
- 14.1.3.3. Historic and Forecasted Product Sales
- 14.1.3.4. Product Sales Volume
- 15. Financial Overview
- 15.1. Company Revenue
- 15.1.1. Geographical Revenue Shares
- 15.1.1.1. Revenue Forecasts
- 15.1.2. Key Developments
- 15.1.2.1. Mergers & Acquisitions
- 15.1.2.2. Key Product Development Activities
- 15.1.2.3. Regulatory Approvals, etc.
- 15.1.3. SWOT Analysis
- 15.2. Thermo Fisher Scientific Inc.
- 15.3. Yaskawa Electric Corporation
- 15.4. KUKA AG
- 15.5. Festo AG & Co. KG
- 15.6. Universal Robots
- 15.7. Tecan Group Ltd.
- 15.8. Hamilton Company
- 15.9. Hudson Robotics
- 15.10. Peak Analysis & Automation (PAA) (*LIST NOT EXHAUSTIVE)
- 16. Assumptions and Research Methodology
- 16.1. Data Collection Methods
- 16.2. Data Triangulation
- 16.3. Forecasting Techniques
- 16.4. Data Verification and Validation
- 17. Appendix
- 17.1. About Us and Services
- 17.2. Contact Us
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