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用于从水中去除三价和六价铬的活性炭及低成本吸附剂。

Activated carbons and low cost adsorbents for remediation of tri- and hexavalent chromium from water.

作者信息

Mohan Dinesh, Pittman Charles U

机构信息

Department of Chemistry, Mississippi State University, Mississippi State, MS 39762, USA.

出版信息

J Hazard Mater. 2006 Sep 21;137(2):762-811. doi: 10.1016/j.jhazmat.2006.06.060. Epub 2006 Jun 29.

DOI:10.1016/j.jhazmat.2006.06.060
PMID:16904258
Abstract

Hexavalent chromium is a well-known highly toxic metal, considered a priority pollutant. Industrial sources of Cr(VI) include leather tanning, cooling tower blowdown, plating, electroplating, anodizing baths, rinse waters, etc. The most common method applied for chromate control is reduction of Cr(VI) to its trivalent form in acid (pH approximately 2.0) and subsequent hydroxide precipitation of Cr(III) by increasing the pH to approximately 9.0-10.0 using lime. Existing overviews of chromium removal only cover selected technologies that have traditionally been used in chromium removal. Far less attention has been paid to adsorption. Herein, we provide the first review article that provides readers an overview of the sorption capacities of commercial developed carbons and other low cost sorbents for chromium remediation. After an overview of chromium contamination is provided, more than 300 papers on chromium remediation using adsorption are discussed to provide recent information about the most widely used adsorbents applied for chromium remediation. Efforts to establish the adsorption mechanisms of Cr(III) and Cr(VI) on various adsorbents are reviewed. Chromium's impact environmental quality, sources of chromium pollution and toxicological/health effects is also briefly introduced. Interpretations of the surface interactions are offered. Particular attention is paid to comparing the sorption efficiency and capacities of commercially available activated carbons to other low cost alternatives, including an extensive table.

摘要

六价铬是一种众所周知的剧毒金属,被视为优先污染物。六价铬的工业来源包括皮革鞣制、冷却塔排污、电镀、阳极氧化槽液、漂洗水等。控制铬酸盐最常用的方法是在酸性条件下(pH约为2.0)将六价铬还原为三价铬,然后用石灰将pH值提高到约9.0 - 10.0,使三价铬形成氢氧化物沉淀。现有的铬去除综述仅涵盖了传统用于铬去除的特定技术。对吸附的关注则少得多。在此,我们提供了第一篇综述文章,向读者概述了商业开发的碳材料和其他低成本吸附剂对铬修复的吸附能力。在概述了铬污染情况之后,讨论了300多篇关于使用吸附法进行铬修复的论文,以提供有关用于铬修复的最广泛使用的吸附剂的最新信息。综述了确定三价铬和六价铬在各种吸附剂上的吸附机制的研究工作。还简要介绍了铬对环境质量的影响、铬污染的来源以及毒理学/健康影响。提供了对表面相互作用的解释。特别关注比较市售活性炭与其他低成本替代品的吸附效率和容量,并列出了一个详细的表格。

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