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Hexavalent chromium in drinking water: Chemistry, challenges and future outlook on Sn(II)- and photocatalyst-based treatment.饮用水中的六价铬:基于Sn(II)和光催化剂处理的化学、挑战及未来展望
Front Environ Sci Eng. 2020;14(5):88. doi: 10.1007/s11783-020-1267-4. Epub 2020 Aug 10.
2
Oxidation of Cr(III)-Fe(III) Mixed-Phase Hydroxides by Chlorine: Implications on the Control of Hexavalent Chromium in Drinking Water.三价铬-三价铁混合相氢氧化物的氯气氧化:饮用水中六价铬控制的意义。
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Hexavalent Chromium Release in Drinking Water Distribution Systems: New Insights into Zerovalent Chromium in Iron Corrosion Scales.饮用水分配系统中六价铬的释放:铁腐蚀层中零价铬的新见解。
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Occurrence of Cr(VI) in drinking water of Greece and relation to the geological background.希腊饮用水中六价铬的出现与地质背景的关系。
J Hazard Mater. 2015 Jan 8;281:2-11. doi: 10.1016/j.jhazmat.2014.06.084. Epub 2014 Jul 18.

引用本文的文献

1
Inhibition of Hexavalent Chromium Release from Drinking Water Distribution Systems: Effects of Water Chemistry-Based Corrosion Control Strategies.抑制饮用水分配系统中六价铬的释放:基于水化学的腐蚀控制策略的影响。
Environ Sci Technol. 2023 Nov 28;57(47):18433-18442. doi: 10.1021/acs.est.2c05324. Epub 2023 Jan 31.
2
Hexavalent-Chromium-Induced Oxidative Stress and the Protective Role of Antioxidants against Cellular Toxicity.六价铬诱导的氧化应激及抗氧化剂对细胞毒性的保护作用
Antioxidants (Basel). 2022 Nov 30;11(12):2375. doi: 10.3390/antiox11122375.

本文引用的文献

1
Occurrence and distribution of hexavalent chromium in groundwater from North Carolina, USA.美国北卡罗来纳州地下水中六价铬的出现和分布。
Sci Total Environ. 2020 Apr 1;711:135135. doi: 10.1016/j.scitotenv.2019.135135. Epub 2019 Nov 12.
2
Cr(VI) Adsorption on Engineered Iron Oxide Nanoparticles: Exploring Complexation Processes and Water Chemistry.六价铬在工程化氧化铁纳米粒子上的吸附:探究络合过程和水化学。
Environ Sci Technol. 2019 Oct 15;53(20):11913-11921. doi: 10.1021/acs.est.9b03796. Epub 2019 Sep 26.
3
The Technology Horizon for Photocatalytic Water Treatment: Sunrise or Sunset?光催化水处理技术的前景:旭日东升还是夕阳西下?
Environ Sci Technol. 2019 Mar 19;53(6):2937-2947. doi: 10.1021/acs.est.8b05041. Epub 2018 Dec 21.
4
Oxidation of Cr(III)-Fe(III) Mixed-Phase Hydroxides by Chlorine: Implications on the Control of Hexavalent Chromium in Drinking Water.三价铬-三价铁混合相氢氧化物的氯气氧化:饮用水中六价铬控制的意义。
Environ Sci Technol. 2018 Jul 17;52(14):7663-7670. doi: 10.1021/acs.est.7b06013. Epub 2018 Jul 6.
5
Optimization of strong-base anion exchange O&M costs for hexavalent chromium treatment.优化强碱阴离子交换运行维护成本以处理六价铬。
Water Res. 2018 Aug 1;139:420-433. doi: 10.1016/j.watres.2018.04.011. Epub 2018 Apr 10.
6
Rates of Cr(VI) Generation from CrFe(OH) Solids upon Reaction with Manganese Oxide.六价铬生成速率从 CrFe(OH) 固体与 二氧化锰反应。
Environ Sci Technol. 2017 Nov 7;51(21):12416-12423. doi: 10.1021/acs.est.7b04097. Epub 2017 Oct 18.
7
Dynamics of Chromium(VI) Removal from Drinking Water by Iron Electrocoagulation.铁电极混凝去除饮用水中六价铬的动力学。
Environ Sci Technol. 2016 Dec 20;50(24):13502-13510. doi: 10.1021/acs.est.6b03637. Epub 2016 Dec 6.
8
Photocatalytic removal of hexavalent chromium by newly designed and highly reductive TiO nanocrystals.新型高还原性 TiO 纳米晶体的光催化去除六价铬。
Water Res. 2017 Jan 1;108:383-390. doi: 10.1016/j.watres.2016.11.013. Epub 2016 Nov 4.
9
Kinetics and Mechanisms of Cr(VI) Formation via the Oxidation of Cr(III) Solid Phases by Chlorine in Drinking Water.饮用水中氯对铬(III)固相氧化生成六价铬的动力学和机理。
Environ Sci Technol. 2016 Jan 19;50(2):701-10. doi: 10.1021/acs.est.5b05739. Epub 2015 Dec 22.
10
Chromate removal from aqueous wastes by reduction with ferrous ion.通过亚铁离子还原从含水废物中去除铬酸盐。
Environ Sci Technol. 1988 Aug 1;22(8):972-7. doi: 10.1021/es00173a018.

饮用水中的六价铬:基于Sn(II)和光催化剂处理的化学、挑战及未来展望

Hexavalent chromium in drinking water: Chemistry, challenges and future outlook on Sn(II)- and photocatalyst-based treatment.

作者信息

Liu Haizhou, Yu Xuejun

机构信息

Department of Chemical and Environmental Engineering, University of California at Riverside, Riverside, CA 92521 USA.

出版信息

Front Environ Sci Eng. 2020;14(5):88. doi: 10.1007/s11783-020-1267-4. Epub 2020 Aug 10.

DOI:10.1007/s11783-020-1267-4
PMID:32839673
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7439242/
Abstract

Chromium (Cr) typically exists in either trivalent and hexavalent oxidation states in drinking water, , Cr(III) and Cr(VI), with Cr(VI) of particular concern in recent years due to its high toxicity and new regulatory standards. This Account presented a critical analysis of the sources and occurrence of Cr(VI) in drinking water in the United States, analyzed the equilibrium chemistry of Cr(VI) species, summarized important redox reaction relevant to the fate of Cr(VI) in drinking water, and critically reviewed emerging Cr(VI) treatment technologies. There is a wide occurrence of Cr(VI) in US source drinking water, with a strong dependence on groundwater sources, mainly due to naturally weathering of chromium-containing aquifers. Challenges regarding traditional Cr(VI) treatment include chemical cost, generation of secondary waste and inadvertent re-generation of Cr(VI) after treatment. To overcome these challenges, reductive Cr(VI) treatment technologies based on the application of stannous tin or electron-releasing titanium dioxide photocatalyst hold extreme promise in the future. To moving forward in the right direction, three key questions need further exploration for the technology implementation, including effective management of residual waste, minimizing the risks of Cr(VI) re-occurrence downstream of drinking water treatment plant, and promote the socioeconomic drivers for Cr(VI) control in the future.

摘要

铬(Cr)在饮用水中通常以三价和六价氧化态存在,即Cr(III)和Cr(VI),近年来,由于Cr(VI)的高毒性和新的监管标准,它受到了特别关注。本综述对美国饮用水中Cr(VI)的来源和存在情况进行了批判性分析,分析了Cr(VI)物种的平衡化学,总结了与饮用水中Cr(VI)归宿相关的重要氧化还原反应,并对新兴的Cr(VI)处理技术进行了批判性综述。美国原水中广泛存在Cr(VI),且强烈依赖地下水源,这主要是由于含铬含水层的自然风化。传统Cr(VI)处理面临的挑战包括化学成本、二次废物的产生以及处理后Cr(VI)的意外再生。为克服这些挑战,基于应用亚锡或电子释放型二氧化钛光催化剂的Cr(VI)还原处理技术在未来极具前景。为朝着正确方向前进,在技术实施方面有三个关键问题需要进一步探索,包括有效管理残余废物、将饮用水处理厂下游Cr(VI)再次出现的风险降至最低,以及推动未来控制Cr(VI)的社会经济驱动力。