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Review of stable mercury isotopes in ecology and biogeochemistry

机译:生态和生物地球化学中稳定汞同位素的综述

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摘要

Due to the advent of cold vapor-multicollector-inductively coupled plasma mass spectrometry (CV-MC-ICP-MS) in the past two decades, many research groups studying mercury (Hg) biogeochemistry have integrated stable Hg isotopes into their research. Currently, >200 studies using this technique have been published and this has greatly enhanced our understanding of the Hg biogeochemical cycle beyond what Hg concentration and speciation analyses alone can provide. These studies are largely divided into two groups: (ⅰ) controlled experiments investigating fractionation of Hg isotopes and refining tools of isotopic analyses, and (ⅱ) studies of natural variations of Hg isotopes. It is now known that Hg isotopes undergo both mass dependent fractionation (MDF; reported as the ratio of mass ~(202)Hg to ,~(198)Hg) and mass independent fractionation (MIF), with MIF occurring at odd masses (~(199)Hg, ~(201)Hg) to a larger magnitude and at even masses (~(200)Hg, ~(204)Hg) to a much smaller magnitude. The two types of MIF are controlled by different photochemical processes. The range of isotopic variations of MDF, odd-MIF, and even-MIF are now well documented in a diverse set of environmental samples, and researchers are continuing to explore how the field of Hg isotope biogeochemistry can be further developed and taken to the next level of understanding. One application that has received considerable attention is the use of Hg isotopes to examine the environmental controls on the production and degradation of methylmercury (MeHg), the most toxic and bioaccumulative form of Hg. Since MeHg is efficiently assimilated and biomagnified along food chains, MeHg has the potential to be a robust ecological tracer. In this review, we give an updated overview of the field of Hg isotopes and focus on how Hg isotopes of MeHg can be used to address fundamental ecological questions, including energy transfer across ecosystem interfaces and as a tracer for animal movements.
机译:由于在过去的二十年中冷蒸气多收集器-电感耦合等离子体质谱仪(CV-MC-ICP-MS)的出现,许多研究汞(Hg)生物地球化学的研究小组已将稳定的Hg同位素纳入其研究。目前,已经发表了200多种使用该技术的研究,这大大增强了我们对汞生物地球化学循环的了解,超出了单独的汞浓度和形态分析所能提供的范围。这些研究大致分为两组:(ⅰ)进行汞同位素分级分离和同位素分析精炼工具的对照实验,以及(ⅱ)汞同位素自然变化的研究。现在已知,汞同位素会经历质量相关的分级分离(MDF;报告为〜(202)Hg与~~(198)Hg的质量比)和质量无关的分级分离(MIF),其中MIF发生在奇数质量(〜 (199)Hg,〜(201)Hg)到较大的量,而均匀质量的(〜(200)Hg,〜(204)Hg)到更小的量。两种类型的MIF受不同的光化学过程控制。 MDF,奇数MIF和偶数MIF的同位素变化范围现已在各种环境样品中得到了很好的记录,研究人员正在继续探索如何进一步开发Hg同位素生物地球化学领域并将其应用于下一个理解水平。汞同位素的使用已受到广泛关注,这是一种应用,用于检查甲基汞(MeHg)的生产和降解的环境控制,甲基汞是最具毒性和生物蓄积性的汞。由于MeHg在食物链中被有效地吸收和生物放大,因此MeHg有可能成为强大的生态示踪剂。在这篇综述中,我们提供了汞同位素领域的最新概述,重点关注甲基汞的汞同位素如何用于解决基本的生态问题,包括跨生态系统界面的能量转移以及作为动物运动的示踪剂。

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