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理解工业过程和环境中的稳定铊同位素:综述。

Understanding stable Tl isotopes in industrial processes and the environment: A review.

机构信息

Department of Soil Science and Soil Protection, Faculty of Agrobiology, Food and Natural Resources, Czech University of Life Sciences Prague, Kamýcká 129, 165 00, Praha 6, Czech Republic.

Department of Soil Science and Soil Protection, Faculty of Agrobiology, Food and Natural Resources, Czech University of Life Sciences Prague, Kamýcká 129, 165 00, Praha 6, Czech Republic.

出版信息

J Environ Manage. 2022 Aug 1;315:115151. doi: 10.1016/j.jenvman.2022.115151. Epub 2022 Apr 29.

Abstract

In this review, a compilation of the current knowledge on stable thallium (Tl) isotopes (Tl and Tl) in specific industrial processes, soils and plants is presented. An overview of the processes that may control Tl concentration and Tl isotope fractionation is compiled, while also overviewing the ability of Tl isotopic ratios to be used as a 'fingerprint' in source apportionment. Thallium isotopic compositions not only depend on their origin, but also on soil processes that may occur over time. One of the most important phases affecting the fractionation of stable Tl isotopes in soils (or sediments) was systematically identified to be specific Mn(III,IV)-oxides (mainly birnessite), due to their potential ability of oxidative Tl sorption, i.e., indicative of redox Tl reactions to be critical controlling factor. It has been established that the Brassica family is a hyperaccumulator of Tl, with clear demonstrations of Tl isotopic fractionation occurring up the translocation pathway. A clear pattern, so far, was observed with Tl isotopic compositions in plants grown on soils that were contaminated and those grown on uncontaminated soils, indicating the importance of the growing medium on Tl uptake, translocation, and isotopic fractionation.

摘要

在这篇综述中,呈现了关于特定工业过程、土壤和植物中稳定的铊(Tl)同位素(Tl 和 Tl)的现有知识的综合。编译了可能控制 Tl 浓度和 Tl 同位素分馏的过程概述,同时还概述了 Tl 同位素比值作为源分配的“指纹”的能力。Tl 同位素组成不仅取决于它们的来源,还取决于可能随时间发生的土壤过程。系统地确定了影响土壤(或沉积物)中稳定 Tl 同位素分馏的最重要的相之一是特定的 Mn(III,IV)-氧化物(主要是针铁矿),由于它们具有氧化 Tl 吸附的潜在能力,即指示氧化还原 Tl 反应是关键的控制因素。已经确定芸苔属是 Tl 的超富集植物,在转运途径中明显发生了 Tl 同位素分馏。到目前为止,在受污染土壤上和在未受污染土壤上生长的植物中观察到 Tl 同位素组成的明显模式,表明生长介质对 Tl 的吸收、转运和同位素分馏的重要性。

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