SF ICP-MS法测定环境样品中钚、镤、铀和钍同位素

IF 1.4 4区 医学 Q4 ENVIRONMENTAL SCIENCES
M. Agarande, S. Schmidt, A. M. Neiva-Marques, P. Bouisset
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引用次数: 5

摘要

α光谱法是测定Pu、Am、Pa、U和Th长生放射性核素最常用的分析工具。热电离质谱法(TIMS)和加速质谱法(AMS)仍被认为是测定其同位素比值的主要方法。随着扇形场电感耦合等离子体质谱法(SF ICP-MS)的发展,等离子离子源光谱仪现在提供了另一种有效的替代方法。本文综述了利用该技术分析此类放射性核素的发展工作和取得的结果。同位素比率和超痕量水平的人造放射性核素,如239,240,241钚,以及自然存在的物种,如231镤,234,235,238铀和230,232钍使用微同心雾化器作为引入系统的质谱仪在不同的现场样品和参考物质。在质谱测量之前,这些元素通过不同的选择性沉淀从主要元素中分离出来。在进一步的步骤中,它们被阴离子交换纯化。还讨论了包括钚在内的同位素比值的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plutonium, protactinium, uranium and thorium isotopes determination in environmental samples by SF ICP-MS
Alpha spectrometry is the most commonly used analytical tool for the determination of Pu, Am, Pa, U and Th long live radionuclides. Thermal ionization mass spectrometry (TIMS) and acceleration mass spectrometry (AMS) are also still considered as primary methods for the determination of their isotope ratios. Spectrometers with plasma ion sources now offer another efficient alternative method with the development of sector field inductively coupled plasma mass spectrometry (SF ICP-MS). This paper summarizes the development work performed and results obtained using this technique for the analysis of such radionuclides. Isotopic ratios and ultra trace levels of man made radionuclides like 239, 240, 241 plutonium but also naturally occurring species like 231 protactinium, 234, 235, 238 uranium and 230, 232 thorium were determined in different field samples and reference materials using a micro concentric nebulizer as an introduction system for the mass spectrometer. Prior to the mass spectrometric measurements these elements were isolated from major elements by different selective precipitations. In further steps, they were purified by anion exchange. Results of isotope ratios including plutonium ones are also discussed.
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来源期刊
Radioprotection
Radioprotection ENVIRONMENTAL SCIENCES-PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH
CiteScore
3.30
自引率
54.50%
发文量
35
审稿时长
>12 weeks
期刊介绍: Radioprotection publishes articles on all aspects of radiological protection, including non-ionising as well as ionising radiations. Fields of interest range from research, development and theory to operational matters, education and training. The very wide spectrum of its topics includes (theoretical and practical aspects): dosimetry, instrument development, specialized measuring techniques, epidemiology, biological effects (in vivo and in vitro) and risk and environmental impact assessments.
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