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通过 MC-ICP-MS 定量 60Fe 原子以重新确定半衰期。

Quantification of 60Fe atoms by MC-ICP-MS for the redetermination of the half-life.

机构信息

Nuclear Energy and Safety, Paul Scherrer Institute (PSI), Villigen, Switzerland.

出版信息

Anal Bioanal Chem. 2013 Mar;405(9):2965-72. doi: 10.1007/s00216-012-6587-1. Epub 2013 Jan 13.

Abstract

In many scientific fields, the half-life of radionuclides plays an important role. The accurate knowledge of this parameter has direct impact on, e.g., age determination of archeological artifacts and of the elemental synthesis in the universe. In order to derive the half-life of a long-lived radionuclide, the activity and the absolute number of atoms have to be analyzed. Whereas conventional radiation measurement methods are typically applied for activity determinations, the latter can be determined with high accuracy by mass spectrometric techniques. Over the past years, the half-lives of several radionuclides have been specified by means of multiple-collector inductively coupled plasma mass spectrometry (MC-ICP-MS) complementary to the earlier reported values mainly derived by accelerator mass spectrometry. The present paper discusses all critical aspects (amount of material, radiochemical sample preparation, interference correction, isotope dilution mass spectrometry, calculation of measurement uncertainty) for a precise analysis of the number of atoms by MC-ICP-MS exemplified for the recently published half-life determination of 60Fe (Rugel et al, Phys Rev Lett 103:072502, 2009).

摘要

在许多科学领域中,放射性核素的半衰期起着重要作用。这一参数的准确知识直接影响到例如考古文物的年代测定和宇宙中元素的合成。为了推导出长寿命放射性核素的半衰期,必须分析其活度和原子的绝对数量。虽然传统的辐射测量方法通常用于活度测定,但后者可以通过质谱技术高精度地确定。在过去的几年中,通过多接受电感耦合等离子体质谱(MC-ICP-MS)与早期主要通过加速器质谱报告的数值相结合,对几种放射性核素的半衰期进行了规定。本文讨论了通过 MC-ICP-MS 精确分析原子数的所有关键方面(物质数量、放射化学样品制备、干扰校正、同位素稀释质谱法、测量不确定度的计算),并以最近发表的 60Fe 半衰期测定为例(Rugel 等人,Phys Rev Lett 103:072502, 2009)。

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