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Efficient degradation of industrial pollutants with sulfur (IV) mediated by LiCoO_2 cathode powders of spent lithium ion batteries: A 'treating waste with waste' strategy

机译:用LiCoO_2阴极粉末介导的硫磺(IV)的工业污染物的高效降解锂离子电池的粉末:“用废物的处理废物”

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摘要

Strategies to maximize the reuse of electronic and industrial wastes have scientific, economic, social and environmental implications. We herein propose a strategy of "treating waste with waste" using LiCoO2 cathode powders from spent lithium ion batteries to eliminate industrial pollutants led by sulfur (S) (IV) in waste water. By radical scavenging experiments and electron spin resonance (ESR) analysis, we identified singlet O-1(2) as the dominant species while SO4 center dot- and (OH)-O-center dot as the secondary species for decontamination during the oxidization process mediated by LiCoO2 powders. The intrinsic mechanism of S(IV) conversion was revealed to be two-step hydrogen migrations from HSO3- to O-2 occurring on LiCoO2 surface by density functional theory (DFT) cal-culations. The surface of LiCoO2 powders plays a key role in anchoring sulfur species and forming surface complex as an excellent medium, which is found to be stable and reusable by material characterizations and the recycling experiment. Free Co(II) ions in solvents have no catalysis effect on the conversion of pollutants. Our work offers a particularly vivid example for rational reuse of electronic wastes to eliminate industrial pollutants, and may raise economic benefits in environmental practice due to two aims achieved in once action.
机译:最大限度地利用电子和工业废物的策略具有科学,经济,社会和环境影响。我们在本文中提出了使用LiCoO2阴极粉末从废锂离子电池中使用LiCoO2阴极粉末“处理废物”的策略,以消除废水中硫(S)(IV)引起的工业污染物。通过自由基清除实验和电子自旋共振(ESR)分析,我们将单次O-1(2)鉴定为优势物种,而SO4中心点和(OH)-O-中心点作为氧化过程中的脱污染的二级物质由LiCoO2粉末介导。 S(IV)转化率的固有机制被认为是通过密度函数理论(DFT)Cal-Culations在LiCoO2表面上发生的Hso3至O-2的两步氢迁移。 LiCoO2粉末的表面在锚固硫种类和形成表面复合物中以优异的介质发挥关键作用,该介质被材料表征和再循环实验发现稳定和可重复使用。溶剂中的游离CO(II)离子对污染物的转化没有催化作用。我们的作品提供了一个特别生动的例子,可获得电子废物的合理重用,以消除工业污染物,可能由于两项行动所实现的两个目标而导致环境实践中的经济效益。

著录项

  • 来源
    《Journal of Hazardous Materials》 |2020年第15期|123090.1-123090.9|共9页
  • 作者单位

    Shanghai Polytech Univ Res Ctr Resource Recycling Sci & Engn Sch Environm & Mat Engn Shanghai 201209 Peoples R China|City Univ Hong Kong Dept Phys Hong Kong 999077 Peoples R China;

    City Univ Hong Kong Dept Phys Hong Kong 999077 Peoples R China;

    Chinese Acad Fishery Sci East China Sea Fisheries Res Inst Lab Qual Safety & Proc Aquat Prod Shanghai 200090 Peoples R China;

    Donghua Univ Coll Environm Sci & Engn State Environm Protect Engn Ctr Pollut Treatment Shanghai 201620 Peoples R China;

    East China Normal Univ Sch Ecol & Environm Sci Shanghai Key Lab Urban Ecol Proc & Ecorestorat Shanghai 200241 Peoples R China|Minist Nat Resources Technol Innovat Ctr Land Spatial Ecorestorat Metr 3663 N Zhongshan Rd Shanghai 200062 Peoples R China;

    Chinese Acad Fishery Sci East China Sea Fisheries Res Inst Lab Qual Safety & Proc Aquat Prod Shanghai 200090 Peoples R China;

    Shanghai Polytech Univ Res Ctr Resource Recycling Sci & Engn Sch Environm & Mat Engn Shanghai 201209 Peoples R China;

    Shanghai Polytech Univ Res Ctr Resource Recycling Sci & Engn Sch Environm & Mat Engn Shanghai 201209 Peoples R China;

    Shanghai Waigaoqiao Free Trade Zone Environm Serv Shanghai 200131 Peoples R China;

    City Univ Hong Kong Dept Phys Hong Kong 999077 Peoples R China|City Univ Hong Kong Shenzhen Res Inst Shenzhen 518057 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Spent lithium-ion batteries; LiCoO2 surface catalysis; Sulfite; Singlet oxygen; DFT calculations;

    机译:花锂离子电池;LiCoO2表面催化;亚硫酸盐;单线氧;DFT计算;

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