시장보고서
상품코드
1864604

질량 분석기 시장 : 제품별, 용도별, 최종사용자별 - 세계 예측(2025-2032년)

Mass Spectrometry Market by Product, Application, End User - Global Forecast 2025-2032

발행일: | 리서치사: 360iResearch | 페이지 정보: 영문 181 Pages | 배송안내 : 1-2일 (영업일 기준)

    
    
    




■ 보고서에 따라 최신 정보로 업데이트하여 보내드립니다. 배송일정은 문의해 주시기 바랍니다.

질량 분석기 시장은 2032년까지 CAGR 8.14%로 111억 2,000만 달러 규모로 성장할 것으로 예측됩니다.

주요 시장 통계
기준 연도 2024년 59억 4,000만 달러
추정 연도 2025년 64억 달러
예측 연도 2032 111억 2,000만 달러
CAGR(%) 8.14%

급속한 기술 발전 속에서 임상 진단 연구 및 산업 응용 분야에서 질량 분석법의 역할이 확대되고 있는 가운데, 전략적 도입이 이루어지고 있습니다.

질량 분석 기술은 분석의 정확성과 전략적 의사결정의 교차점에 위치하며, 다양한 분야의 연구소, 장비 제조업체, 최종사용자에게 중요한 역할을 담당하고 있습니다. 장비의 감도가 향상되고 데이터 처리가 고도화됨에 따라 이해관계자들은 기술 선택을 업무 목표, 규제 요건, 진화하는 애플리케이션 요구사항과 일치시켜야 합니다. 본 서론에서는 이 분야를 재구성하는 핵심 요인을 개괄하고, 각 장에서 살펴볼 기술적 전환점, 정책적 영향, 세분화의 미묘한 차이, 지역적 동향, 경쟁 행동, 권장 대응 방안에 대한 프레임워크를 제시합니다.

기기 설계, 데이터 과학, 통합 워크플로우의 급속한 발전이 질량 분석의 경쟁 환경과 응용 분야를 근본적으로 재구성하는 상황

기술, 데이터, 워크플로우의 변화로 인해 질량 분석의 환경은 변화하고 있으며, 이러한 변화가 종합적으로 성능에 대한 기대와 가치 제안을 재정의하고 있습니다. 최근 장비 수준의 발전은 더 높은 해상도와 빠른 획득 속도에 중점을 두고 있으며, 기존에는 일상적인 환경에서 비현실적이었던 분석이 가능해졌습니다. 하드웨어의 개선을 보완하기 위해 상온 이온화, 간소화된 샘플 조제, 모듈화된 프론트엔드 시스템의 발전은 결과 도출 시간을 단축하는 동시에 실현 가능한 분석의 범위를 확장하고 있습니다. 이러한 기술적 진보는 환경 스크리닝 및 식품 안전과 같은 응용 분야에 대한 장벽을 동시에 낮추는 동시에, 단백질체학 및 법과학 분야에서 보다 심도 있는 조사를 가능하게 합니다.

미국 관세 조치가 질량 분석기 생태계에 미치는 누적된 조달 및 공급망 영향 평가

정책 및 무역 동향은 분석 장비의 조달 및 공급망 계획에 새로운 복잡성을 더하고 있습니다. 최근 정책 주기에 시행된 관세 조치는 특수 질량 분석기에 의존하는 연구소의 조달 전략, 부품의 가용성, 총 착륙 비용에 영향을 미쳤습니다. 이에 따라 제조업체와 구매자는 서비스 연속성을 유지하고 장기적인 연구 및 테스트 프로그램을 보호하기 위해 공급업체 다변화, 재고 버퍼링, 현지 조립 전략을 재검토하고 있습니다.

제품 용도와 최종사용자 동향을 통합한 상세한 세분화 분석을 통해 맞춤형 장비 및 소프트웨어 전략이 경쟁 우위를 창출할 수 있는 영역을 파악할 수 있습니다.

제품, 애플리케이션, 최종사용자에 대한 정밀한 세분화 분석을 통해 질량 분석기에 대한 투자가 차별화된 가치를 창출할 수 있는 영역과 타겟팅된 혁신을 통해 새로운 기능을 개척할 수 있는 영역을 명확히 할 수 있습니다. 제품 기준으로 시장은 기기 및 소프트웨어로 조사되며, 기기 카테고리는 가스 크로마토그래피 질량 분석, 이온 크로마토그래피 질량 분석, 액체 크로마토그래피 질량 분석, 매트릭스 지원 레이저 탈이온화 이온화 비행 시간 질량 분석, 사중 극자 질량 분석으로 세분화됩니다. 이 제품 수준의 관점에서 보면, 명확한 개발 경로가 드러납니다. 크로마토그래피 하이프네이션은 일상적인 정량적 워크플로우를 계속 발전시키고 있으며, MALDI-TOF 및 고해상도 플랫폼은 신속한 식별 및 발견 지향적 분석을 가능하게 합니다.

목차

제1장 서문

제2장 조사 방법

제3장 주요 요약

제4장 시장 개요

제5장 시장 인사이트

제6장 미국 관세의 누적 영향 2025

제7장 AI의 누적 영향 2025

제8장 질량 분석기 시장 : 제품별

  • 기기
    • 가스 크로마토그래피 질량 분석법
    • 이온 크로마토그래피 질량 분석법
    • 액체 크로마토그래피 질량 분석법
    • 매트릭스 지원 레이저 이탈 이온화법/이온화 비행 시간형 질량 분석법
    • 사중극자 질량 분석법
  • 소프트웨어

제9장 질량 분석기 시장 : 용도별

  • 임상 진단
  • 환경 시험
  • 식품 및 음료 검사
  • 법의학
  • 단백질체학

제10장 질량 분석기 시장 : 최종사용자별

  • 학술·조사기관
  • 환경 시험 연구소
  • 식품 및 음료 업계
  • 법의학 연구소
  • 제약·바이오테크놀러지 기업

제11장 질량 분석기 시장 : 지역별

  • 아메리카
    • 북미
    • 라틴아메리카
  • 유럽, 중동 및 아프리카
    • 유럽
    • 중동
    • 아프리카
  • 아시아태평양

제12장 질량 분석기 시장 : 그룹별

  • ASEAN
  • GCC
  • EU
  • BRICS
  • G7
  • NATO

제13장 질량 분석기 시장 : 국가별

  • 미국
  • 캐나다
  • 멕시코
  • 브라질
  • 영국
  • 독일
  • 프랑스
  • 러시아
  • 이탈리아
  • 스페인
  • 중국
  • 인도
  • 일본
  • 호주
  • 한국

제14장 경쟁 구도

  • 시장 점유율 분석, 2024
  • FPNV 포지셔닝 매트릭스, 2024
  • 경쟁 분석
    • 908 Devices Inc.
    • Advion, Inc.
    • Agilent Technologies, Inc.
    • AMETEK Inc.
    • Analytik Jena AG
    • Avantor, Inc.
    • Bruker Corporation
    • Danaher Corporation
    • DANI Instruments S.p.A.
    • F. Hoffmann-La Roche AG
    • FLIR Systems, Inc.
    • Hiden Analytical, Inc.
    • Hitachi, Ltd.
    • JEOL Ltd.
    • Kore Technology Limited
    • LECO Corporation
    • Merck KGaA
    • MKS Instruments, Inc.
    • PerkinElmer, Inc.
    • Pfeiffer Vacuum GmbH
    • Process Insights AG
    • Rigaku Corporation
    • SCIEX AB
    • Shimadzu Corporation
    • Spectrum Chemical Mfg. Corp.
    • Thermo Fisher Scientific Inc.
    • VProteomics Company
    • Waters Corporation
KSM 25.12.12

The Mass Spectrometry Market is projected to grow by USD 11.12 billion at a CAGR of 8.14% by 2032.

KEY MARKET STATISTICS
Base Year [2024] USD 5.94 billion
Estimated Year [2025] USD 6.40 billion
Forecast Year [2032] USD 11.12 billion
CAGR (%) 8.14%

A strategic introduction framing the expanding role of mass spectrometry across clinical diagnostics research and industrial applications amid rapid technological evolution

Mass spectrometry stands at the intersection of analytical precision and strategic decision-making for laboratories, instrument manufacturers, and end users across sectors. As instrumentation becomes more sensitive and data handling more sophisticated, stakeholders must align technology choices with operational objectives, regulatory expectations, and evolving application demands. This introduction outlines the core forces reshaping the field and frames the subsequent sections that explore technology inflections, policy impacts, segmentation nuances, regional dynamics, competitive behavior, and recommended actions.

The discipline now spans routine clinical workflows to cutting-edge proteomics and environmental surveillance, demanding versatility from platforms and clarity from decision-makers. With an accelerating pace of methodological innovation and growing demand for reproducible, high-throughput analyses, organizations must reexamine procurement criteria, laboratory design, and talent development. This introductory overview emphasizes that strategic adoption of mass spectrometry requires both technical literacy and a clear alignment to organizational priorities, from regulatory compliance to scientific differentiation. The remainder of this executive summary builds on that premise to deliver actionable insight for leaders preparing to invest in or deploy mass spectrometry capabilities.

How rapid advances in instrument design data science and integrated workflows are fundamentally reshaping the competitive and application landscape for mass spectrometry

The landscape for mass spectrometry is being transformed by a confluence of technical, data, and workflow shifts that collectively redefine performance expectations and value propositions. Recent instrument-level advances emphasize higher resolving power and faster acquisition rates, enabling analyses that were previously impractical in routine settings. Complementing hardware improvements, advances in ambient ionization, simplified sample preparation, and modular front-end systems reduce time to result while widening the range of feasible assays. These technical gains are simultaneously lowering barriers for applications such as environmental screening and food safety while enabling deeper interrogation in proteomics and forensics.

Parallel to instrumentation evolution, software and data science have emerged as pivotal differentiators. Machine learning algorithms and automated spectral interpretation accelerate throughput and reduce operator dependence, while cloud-enabled platforms facilitate collaborative analysis and remote method development. Interoperability between instrument vendors and third-party informatics providers is becoming a competitive imperative. As the ecosystem matures, value shifts from individual instruments to integrated solutions that pair robust hardware with comprehensive data workflows, regulatory-ready reporting, and user-centered interfaces. For organizations, this means procurement decisions increasingly hinge on software roadmaps, lifecycle support, and the vendor's ability to deliver validated workflows rather than on hardware metrics alone.

Assessing the cumulative operational procurement and supply chain consequences of recent United States tariff measures on the mass spectrometry ecosystem

Policy and trade dynamics have introduced new layers of complexity to procurement and supply chain planning for analytical instrumentation. Tariff measures enacted in recent policy cycles have affected sourcing strategies, component availability, and total landed costs for laboratories that rely on specialized mass spectrometry equipment. In response, manufacturers and buyers have reexamined supplier diversification, inventory buffering, and local assembly strategies to maintain continuity of service and protect long-term research and testing programs.

The cumulative effect of these trade actions has been to accelerate certain strategic behaviors among stakeholders. Instrument vendors have intensified efforts to localize key manufacturing steps or secure alternate supply channels for critical optics and electronics. Laboratories are prioritizing lifecycle planning and strengthening service contracts to mitigate the operational risk of delayed deliveries. Procurement teams are engaging earlier with technical and finance stakeholders to evaluate procurement windows and evaluate the trade-offs between faster delivery and specific configuration needs. Overall, the tariff environment has underscored the importance of supply chain resilience and prompted a more strategic approach to vendor selection and contract structuring across the sector.

Granular segmentation insights synthesizing product application and end-user dynamics to reveal where tailored instrument and software strategies create competitive advantage

A refined understanding of product, application, and end-user segmentation clarifies where investments in mass spectrometry deliver differentiated value and where targeted innovation can unlock new capabilities. Based on Product, the market is studied across Instruments and Software, and the Instruments category further differentiates across Gas Chromatography-Mass Spectrometry, Ion Chromatography Mass Spectrometry, Liquid Chromatography-Mass Spectrometry, Matrix-Assisted Laser Desorption/Ionization-Time-of-Flight Mass Spectrometry, and Quadrupole Mass Spectrometry. This product-level view highlights distinct development pathways: chromatographic hyphenation continues to drive routine quantitative workflows, while MALDI-TOF and high-resolution platforms enable rapid identification and discovery-oriented analyses.

Based on Application, the market is studied across Clinical Diagnostics, Environmental Testing, Food & Beverage Testing, Forensics, and Proteomics, revealing divergent performance priorities and validation requirements across use cases. Clinical diagnostics and regulated testing emphasize reproducibility, validated workflows, and perpetual compliance documentation, whereas proteomics and forensics often demand the highest sensitivity and resolution to support novel discovery or evidentiary standards. Based on End User, the market is studied across Academic & Research Institutions, Environmental Testing Labs, Food & Beverage Industry, Forensic Labs, and Pharmaceutical & Biotechnology Firms, each exhibiting unique procurement cycles, budgetary constraints, and in-house expertise profiles. When these segmentation dimensions are considered together, it becomes clear that vendors and laboratory leaders must tailor propositions to the intersection of instrument capability, application rigor, and user sophistication to achieve sustained adoption.

Regional dynamics and strategic considerations across the Americas Europe Middle East and Africa and Asia-Pacific that influence adoption support and commercialization pathways

Regional dynamics are shaping investment priorities, regulatory requirements, and partnership models across the global mass spectrometry landscape. In the Americas, well-established clinical and pharmaceutical ecosystems continue to drive demand for validated, high-throughput platforms and integrated data solutions, while a strong service market supports long instrument lifecycles and rapid method deployment. Relationships between vendors and large-scale end users are characterized by bundled service agreements and localized technical support infrastructure that enable mission-critical operations.

In Europe, Middle East & Africa, heterogeneity across national regulatory regimes and funding environments creates a mosaic of adoption patterns, with some markets prioritizing cutting-edge research instrumentation and others emphasizing cost-effective surveillance and environmental monitoring. Strategic collaborations with centralized reference laboratories and public health agencies are common, enabling technology diffusion and shared method development. In Asia-Pacific, investment is skewed toward capacity expansion and rapid scaling, driven by both private sector R&D and public-sector surveillance initiatives. High-volume manufacturing hubs in the region also influence supply chain considerations and encourage regional OEM partnerships. Across regions, localization of service, regulatory alignment, and the ability to support cross-border workflows are decisive factors in long-term vendor success.

Competitive dynamics and company strategies that reveal how software service models and workflow validation determine vendor differentiation and long-term adoption

Competitive behavior in the mass spectrometry space reflects a mix of legacy incumbents and emergent specialists, with differentiation increasingly driven by software ecosystems, service models, and validated application packages. Established instrument suppliers continue to leverage deep engineering expertise and global service networks to maintain trust among regulated end users, while leaner companies focus on modular designs, rapid innovation cycles, and niche application dominance. The interplay between hardware reliability and data analytics capabilities has elevated partnerships and acquisitions as common strategies to fill portfolio gaps quickly.

From a commercialization perspective, companies that embed workflow automation, regulatory-ready reporting, and open data standards into their product suites gain a meaningful advantage in heavily regulated segments. Meanwhile, providers targeting discovery and high-resolution applications concentrate on extending dynamic range and improving throughput without sacrificing spectral fidelity. Across the vendor landscape, the capacity to provide reproducible methods, comprehensive training, and responsive after-sales support remains a critical differentiator that influences procurement decisions and long-term client retention.

Actionable recommendations for industry leaders to align procurement talent and partnership strategies and accelerate adoption of validated mass spectrometry workflows

Leaders seeking to capitalize on mass spectrometry innovation should focus on strategic alignment across technology, talent, and partnerships to accelerate value realization. First, prioritize investments in platforms that offer validated workflows and seamless data integration to reduce time to usable results and to strengthen regulatory readiness. Second, expand in-house analytical capabilities through targeted training programs and partnerships with academic or reference laboratories to bridge operational gaps and enable advanced method development. Such investments pay dividends by reducing dependency on external service providers and improving time-to-insight for critical assays.

Third, reassess procurement approaches to emphasize supplier resilience and lifecycle support; secure service-level commitments that include parts, calibration, and software updates to safeguard continuity. Fourth, consider collaboration models that pair instrument providers with third-party informatics specialists to accelerate adoption of AI-driven interpretation and automated reporting. Finally, align commercial and R&D roadmaps to prioritize applications with clear clinical or regulatory value, ensuring that new method introductions are accompanied by validation packages and user training to drive uptake in regulated environments.

Transparent research methodology blending stakeholder interviews vendor documentation regulatory guidance and peer-reviewed science to validate technical and commercial insights

The research underpinning this summary synthesizes primary stakeholder interviews, instrument vendor documentation, regulatory guidance, and peer-reviewed literature to create a balanced view of technical and commercial trends. Primary inputs included structured interviews with laboratory directors, procurement officers, and technology leaders across clinical, environmental, and industrial testing sites, supplemented by conversations with research-focused end users specializing in proteomics and forensic analysis. Vendor product specifications and white papers were used to evaluate instrument capabilities, while methodological papers and standards guidance helped validate claims around reproducibility and application fit.

Analytical rigor was maintained through cross-validation of qualitative inputs with publicly available regulatory frameworks and independent scientific literature. Emphasis was placed on identifying repeatable patterns across interviews and documented evidence rather than relying on single-source claims. The resulting synthesis prioritizes actionable insights and preserves methodological transparency to support informed decision-making by executives, scientists, and procurement professionals.

Concluding synthesis on how integrated instrumentation data workflows and resilient supply strategies determine the long-term strategic value of mass spectrometry

The convergence of advanced instrumentation, data-centric workflows, and heightened supply chain awareness is reshaping the strategic calculus for mass spectrometry adoption. Organizations that integrate high-performance hardware with robust software, validated workflows, and dependable service infrastructure will be best positioned to extract value across diagnostics research and industrial applications. As the technology landscape evolves, the ability to translate instrument-level improvements into operational efficiencies and regulatory-compliant results becomes the defining competency for laboratory leaders.

Looking ahead, success will favor those who adopt a systems view-aligning procurement, training, and data strategies to realize the full benefits of next-generation mass spectrometry. By prioritizing interoperability, reproducibility, and supplier resilience, institutions can navigate policy headwinds and technological disruption while unlocking new scientific and commercial opportunities that enhance both short-term performance and long-term strategic positioning.

Table of Contents

1. Preface

  • 1.1. Objectives of the Study
  • 1.2. Market Segmentation & Coverage
  • 1.3. Years Considered for the Study
  • 1.4. Currency & Pricing
  • 1.5. Language
  • 1.6. Stakeholders

2. Research Methodology

3. Executive Summary

4. Market Overview

5. Market Insights

  • 5.1. Integration of ion mobility spectrometry with high resolution mass analysis for enhanced separation of complex biomolecules
  • 5.2. Development of portable mass spectrometers for on-site environmental pollutant detection in remote locations
  • 5.3. Advancements in MALDI imaging mass spectrometry for spatially resolved single cell metabolomic profiling
  • 5.4. Implementation of AI driven data processing tools to accelerate compound identification in mass spectrometry datasets
  • 5.5. Growth of ambient ionization techniques enabling real time forensic and clinical sample analysis without chromatography
  • 5.6. Emergence of ultrahigh throughput mass spectrometry platforms for large scale drug discovery screening applications
  • 5.7. Increase in hybrid tandem mass spectrometry systems combining Orbitrap and time of flight for high sensitivity quantitation
  • 5.8. Adoption of cloud based data management and collaboration frameworks for multi center mass spectrometry research projects

6. Cumulative Impact of United States Tariffs 2025

7. Cumulative Impact of Artificial Intelligence 2025

8. Mass Spectrometry Market, by Product

  • 8.1. Instruments
    • 8.1.1. Gas Chromatography-Mass Spectrometry
    • 8.1.2. Ion Chromatography Mass Spectrometry
    • 8.1.3. Liquid Chromatography-Mass Spectrometry
    • 8.1.4. Matrix-Assisted Laser Desorption/Ionization-Time-of-Flight Mass Spectrometry
    • 8.1.5. Quadrupole Mass Spectrometry
  • 8.2. Software

9. Mass Spectrometry Market, by Application

  • 9.1. Clinical Diagnostics
  • 9.2. Environmental Testing
  • 9.3. Food & Beverage Testing
  • 9.4. Forensics
  • 9.5. Proteomics

10. Mass Spectrometry Market, by End User

  • 10.1. Academic & Research Institutions
  • 10.2. Environmental Testing Labs
  • 10.3. Food & Beverage Industry
  • 10.4. Forensic Labs
  • 10.5. Pharmaceutical & Biotechnology Firms

11. Mass Spectrometry Market, by Region

  • 11.1. Americas
    • 11.1.1. North America
    • 11.1.2. Latin America
  • 11.2. Europe, Middle East & Africa
    • 11.2.1. Europe
    • 11.2.2. Middle East
    • 11.2.3. Africa
  • 11.3. Asia-Pacific

12. Mass Spectrometry Market, by Group

  • 12.1. ASEAN
  • 12.2. GCC
  • 12.3. European Union
  • 12.4. BRICS
  • 12.5. G7
  • 12.6. NATO

13. Mass Spectrometry Market, by Country

  • 13.1. United States
  • 13.2. Canada
  • 13.3. Mexico
  • 13.4. Brazil
  • 13.5. United Kingdom
  • 13.6. Germany
  • 13.7. France
  • 13.8. Russia
  • 13.9. Italy
  • 13.10. Spain
  • 13.11. China
  • 13.12. India
  • 13.13. Japan
  • 13.14. Australia
  • 13.15. South Korea

14. Competitive Landscape

  • 14.1. Market Share Analysis, 2024
  • 14.2. FPNV Positioning Matrix, 2024
  • 14.3. Competitive Analysis
    • 14.3.1. 908 Devices Inc.
    • 14.3.2. Advion, Inc.
    • 14.3.3. Agilent Technologies, Inc.
    • 14.3.4. AMETEK Inc.
    • 14.3.5. Analytik Jena AG
    • 14.3.6. Avantor, Inc.
    • 14.3.7. Bruker Corporation
    • 14.3.8. Danaher Corporation
    • 14.3.9. DANI Instruments S.p.A.
    • 14.3.10. F. Hoffmann-La Roche AG
    • 14.3.11. FLIR Systems, Inc.
    • 14.3.12. Hiden Analytical, Inc.
    • 14.3.13. Hitachi, Ltd.
    • 14.3.14. JEOL Ltd.
    • 14.3.15. Kore Technology Limited
    • 14.3.16. LECO Corporation
    • 14.3.17. Merck KGaA
    • 14.3.18. MKS Instruments, Inc.
    • 14.3.19. PerkinElmer, Inc.
    • 14.3.20. Pfeiffer Vacuum GmbH
    • 14.3.21. Process Insights AG
    • 14.3.22. Rigaku Corporation
    • 14.3.23. SCIEX AB
    • 14.3.24. Shimadzu Corporation
    • 14.3.25. Spectrum Chemical Mfg. Corp.
    • 14.3.26. Thermo Fisher Scientific Inc.
    • 14.3.27. VProteomics Company
    • 14.3.28. Waters Corporation
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