封面
市场调查报告书
商品编码
1663095

玻璃闪烁体市场规模、份额和成长分析(按闪烁体类型、应用、辐射类型、外形规格、最终用户和地区)- 产业预测 2025-2032

Glass Scintillator Market Size, Share, and Growth Analysis, By Scintillator Type, By Application, By Radiation Type, By Form Factor, By End User, By Region - Industry Forecast 2025-2032

出版日期: | 出版商: SkyQuest | 英文 219 Pages | 商品交期: 3-5个工作天内

价格
简介目录

2023 年玻璃闪烁体市场规模为 2,156 万美元,预计将从 2024 年的 2,255 万美元成长到 2032 年的 3,232 万美元,预测期内(2025-2032 年)的复合年增长率为 4.6%。

全球玻璃闪烁体市场正在持续成长,这得益于辐射检测、核能研究和医学影像处理等不同领域的需求不断增长。玻璃闪烁体因其出色的辐射敏感性和耐用性而闻名,在关键应用中越来越受到青睐。此外,技术进步和正在进行的研究和开发努力正在扩大玻璃闪烁体的潜在应用。市场竞争激烈,主要企业正专注于技术创新以加强其市场地位。此外,加强的安全法规和对核能安全的日益关注也促进了市场的强劲成长。随着辐射侦测和影像处理技术在工业中得到越来越多的应用,玻璃闪烁体市场预计将继续扩大。

目录

介绍

  • 调查目的
  • 研究范围
  • 定义

调查方法

  • 资讯采购
  • 次要和主要资料方法
  • 市场规模预测
  • 市场假设与限制

执行摘要

  • 全球市场展望
  • 供需趋势分析
  • 细分机会分析

市场动态及展望

  • 市场概况
  • 市场规模
  • 市场动态
    • 驱动因素和机会
    • 限制与挑战
  • 波特的分析

主要市场考察

  • 关键成功因素
  • 竞争程度
  • 主要投资机会
  • 市场生态系统
  • 市场吸引力指数(2024 年)
  • PESTEL 分析
  • 总体经济指标
  • 价值链分析
  • 定价分析

玻璃闪烁体市场规模(闪烁器类型和复合年增长率) (2025-2032)

  • 市场概况
  • 铅玻璃闪烁器
  • 塑胶闪烁器
  • 水晶闪烁器
  • 碘化钠闪烁器

玻璃闪烁体市场规模(依应用划分)及复合年增长率(2025-2032)

  • 市场概况
  • 医学影像
  • 辐射侦测
  • 高能物理
  • 核子安全
  • 工业应用

玻璃闪烁体市场规模(按辐射类型和复合年增长率) (2025-2032)

  • 市场概况
  • 伽玛射线
  • 阿尔法粒子
  • β粒子
  • 中子

玻璃闪烁体市场规模(依外形规格和复合年增长率) (2025-2032)

  • 市场概况
  • 标准尺寸检测器
  • 客製化检测器
  • 可携式检测器

玻璃闪烁体市场规模(依最终用户和复合年增长率) (2025-2032)

  • 市场概况
  • 医疗保健提供者
  • 研究组织
  • 核能发电厂
  • 国防部门

玻璃闪烁体市场规模(按地区)及复合年增长率(2025-2032)

  • 北美洲
    • 美国
    • 加拿大
  • 欧洲
    • 德国
    • 西班牙
    • 法国
    • 英国
    • 义大利
    • 其他欧洲国家地区
  • 亚太地区
    • 中国
    • 印度
    • 日本
    • 韩国
    • 其他亚太地区
  • 拉丁美洲
    • 巴西
    • 其他拉丁美洲国家
  • 中东和非洲
    • 海湾合作委员会国家
    • 南非
    • 其他中东和非洲地区

竞争资讯

  • 前 5 家公司对比
  • 主要企业市场定位(2024年)
  • 主要市场参与者所采用的策略
  • 近期市场趋势
  • 公司市场占有率分析(2024 年)
  • 主要企业简介
    • 公司详细信息
    • 产品系列分析
    • 公司分部份额分析
    • 收益与前一年同期比较对比(2022-2024 年)

主要企业简介

  • Saint-Gobain Ceramics & Plastics(France)
  • Albemarle Corporation(United States)
  • Amcrys(United States)
  • Collimated Holes Inc.(United States)
  • Dynasil Corporation(United States)
  • Epic Crystal Co., Ltd.(United Kingdom)
  • Food Machinery Corporation Ltd.(United Kingdom)
  • Gee Bee International(United States)
  • Hamamatsu Photonics(Japan)
  • Hitachi Metals Ltd.(Japan)
  • Nihon Kessho Kogaku Ltd.(Japan)
  • Rexon Components & TLD Systems Inc.(United States)
  • Scintacor(United Kingdom)
  • Proterial, Ltd.(Japan)
  • Ludlum Measurements(United States)
  • Mirion Technologies(United States)
  • Thermo Fisher Scientific(United States)
  • Zecotek Photonics Inc.(Canada)
  • Radiation Monitoring Devices, Inc.(United States)
  • Toshiba Materials Co., Ltd.(Japan)

结论和建议

简介目录
Product Code: SQMIG35G2258

Glass Scintillator Market size was valued at USD 21.56 million in 2023 and is poised to grow from USD 22.55 million in 2024 to USD 32.32 million by 2032, growing at a CAGR of 4.6% during the forecast period (2025-2032).

The global glass scintillator market is on a continuous growth path, propelled by rising demand across diverse sectors such as radiation detection, nuclear research, and medical imaging. Known for their superior radiation sensitivity and durability, glass scintillators are increasingly preferred for critical applications. Technological advancements and ongoing R&D efforts are also broadening their potential applications. The market landscape is competitive, with key players focused on innovation to enhance their market presence. Furthermore, heightened safety regulations and an amplified focus on nuclear safety are contributing to the market's robust growth outlook. As industries increasingly adopt radiation detection and imaging technologies, the glass scintillator market is poised for sustained expansion in the years ahead.

Top-down and bottom-up approaches were used to estimate and validate the size of the Glass Scintillator market and to estimate the size of various other dependent submarkets. The research methodology used to estimate the market size includes the following details: The key players in the market were identified through secondary research, and their market shares in the respective regions were determined through primary and secondary research. This entire procedure includes the study of the annual and financial reports of the top market players and extensive interviews for key insights from industry leaders such as CEOs, VPs, directors, and marketing executives. All percentage shares split, and breakdowns were determined using secondary sources and verified through Primary sources. All possible parameters that affect the markets covered in this research study have been accounted for, viewed in extensive detail, verified through primary research, and analyzed to get the final quantitative and qualitative data.

Glass Scintillator Market Segments Analysis

Global Glass Scintillator Market is segmented by Scintillator Type, Application, Radiation Type, Form Factor, End User and region. Based on Scintillator Type, the market is segmented into Lead Glass Scintillators, Plastic Scintillators, Crystal Scintillators and Sodium Iodide Scintillators. Based on Application, the market is segmented into Medical Imaging, Radiation Detection, High-Energy Physics, Nuclear Security and Industrial Applications. Based on Radiation Type, the market is segmented into Gamma Rays, Alpha Particles, Beta Particles and Neutrons. Based on Form Factor, the market is segmented into Standard Size Detectors, Customized Detectors and Portable Detectors. Based on End User, the market is segmented into Healthcare Providers, Research Institutions, Nuclear Power Plants and Defense Sector. Based on region, the market is segmented into North America, Europe, Asia Pacific, Latin America and Middle East & Africa.

Driver of the Glass Scintillator Market

A key factor propelling the global glass scintillator market is the ongoing progress in radiation detection technology. Innovations in this field lead to the creation of more sensitive and efficient scintillators, significantly enhancing the detection and measurement of ionizing radiation across diverse applications. As companies place greater emphasis on safety and accuracy in radiation-related processes, the evolution of advanced scintillation materials and technologies plays a crucial role in driving market expansion. This focus on developing superior solutions not only meets the increasing demand for reliability but also supports industries striving for enhanced operational standards in radiation monitoring and control.

Restraints in the Glass Scintillator Market

One significant challenge facing the global glass scintillator market is the considerable expense involved in both the manufacturing and procurement of these specialized materials. The production process typically requires intricate methodologies and high-purity components, which contribute to the overall elevated costs of glass scintillators. This financial constraint can restrict their adoption in sectors and regions with limited budgets, thereby potentially stifling market growth, particularly in applications where affordability is paramount. As a result, the high cost can hinder wider utilization and acceptance of glass scintillators in various industries that require these advanced materials.

Market Trends of the Glass Scintillator Market

The Glass Scintillator market is experiencing a notable upward trend, primarily driven by the escalating demand for advanced radiation detection and imaging solutions within the healthcare sector. With the rising incidence of cancer and the critical need for accurate diagnostics and treatments, glass scintillators are becoming increasingly vital due to their superior performance, durability, and efficiency. These materials are particularly well-suited for medical devices such as positron emission tomography (PET) scanners and gamma cameras. As healthcare facilities modernize their technologies and equipment to enhance patient care, the glass scintillator market is poised for sustained growth, reflecting an integral shift towards more reliable imaging solutions.

Table of Contents

Introduction

  • Objectives of the Study
  • Scope of the Report
  • Definitions

Research Methodology

  • Information Procurement
  • Secondary & Primary Data Methods
  • Market Size Estimation
  • Market Assumptions & Limitations

Executive Summary

  • Global Market Outlook
  • Supply & Demand Trend Analysis
  • Segmental Opportunity Analysis

Market Dynamics & Outlook

  • Market Overview
  • Market Size
  • Market Dynamics
    • Drivers & Opportunities
    • Restraints & Challenges
  • Porters Analysis
    • Competitive rivalry
    • Threat of substitute
    • Bargaining power of buyers
    • Threat of new entrants
    • Bargaining power of suppliers

Key Market Insights

  • Key Success Factors
  • Degree of Competition
  • Top Investment Pockets
  • Market Ecosystem
  • Market Attractiveness Index, 2024
  • PESTEL Analysis
  • Macro-Economic Indicators
  • Value Chain Analysis
  • Pricing Analysis

Global Glass Scintillator Market Size by Scintillator Type & CAGR (2025-2032)

  • Market Overview
  • Lead Glass Scintillators
  • Plastic Scintillators
  • Crystal Scintillators
  • Sodium Iodide Scintillators

Global Glass Scintillator Market Size by Application & CAGR (2025-2032)

  • Market Overview
  • Medical Imaging
  • Radiation Detection
  • High-Energy Physics
  • Nuclear Security
  • Industrial Applications

Global Glass Scintillator Market Size by Radiation Type & CAGR (2025-2032)

  • Market Overview
  • Gamma Rays
  • Alpha Particles
  • Beta Particles
  • Neutrons

Global Glass Scintillator Market Size by Form Factor & CAGR (2025-2032)

  • Market Overview
  • Standard Size Detectors
  • Customized Detectors
  • Portable Detectors

Global Glass Scintillator Market Size by End User & CAGR (2025-2032)

  • Market Overview
  • Healthcare Providers
  • Research Institutions
  • Nuclear Power Plants
  • Defense Sector

Global Glass Scintillator Market Size & CAGR (2025-2032)

  • North America (Scintillator Type, Application, Radiation Type, Form Factor, End User)
    • US
    • Canada
  • Europe (Scintillator Type, Application, Radiation Type, Form Factor, End User)
    • Germany
    • Spain
    • France
    • UK
    • Italy
    • Rest of Europe
  • Asia Pacific (Scintillator Type, Application, Radiation Type, Form Factor, End User)
    • China
    • India
    • Japan
    • South Korea
    • Rest of Asia-Pacific
  • Latin America (Scintillator Type, Application, Radiation Type, Form Factor, End User)
    • Brazil
    • Rest of Latin America
  • Middle East & Africa (Scintillator Type, Application, Radiation Type, Form Factor, End User)
    • GCC Countries
    • South Africa
    • Rest of Middle East & Africa

Competitive Intelligence

  • Top 5 Player Comparison
  • Market Positioning of Key Players, 2024
  • Strategies Adopted by Key Market Players
  • Recent Developments in the Market
  • Company Market Share Analysis, 2024
  • Company Profiles of All Key Players
    • Company Details
    • Product Portfolio Analysis
    • Company's Segmental Share Analysis
    • Revenue Y-O-Y Comparison (2022-2024)

Key Company Profiles

  • Saint-Gobain Ceramics & Plastics (France)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Albemarle Corporation (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Amcrys (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Collimated Holes Inc. (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Dynasil Corporation (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Epic Crystal Co., Ltd. (United Kingdom)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Food Machinery Corporation Ltd. (United Kingdom)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Gee Bee International (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Hamamatsu Photonics (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Hitachi Metals Ltd. (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Nihon Kessho Kogaku Ltd. (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Rexon Components & TLD Systems Inc. (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Scintacor (United Kingdom)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Proterial, Ltd. (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Ludlum Measurements (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Mirion Technologies (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Thermo Fisher Scientific (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Zecotek Photonics Inc. (Canada)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Radiation Monitoring Devices, Inc. (United States)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Toshiba Materials Co., Ltd. (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments

Conclusion & Recommendations