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首页> 外文期刊>Solar Energy >Design and preparation of core-shell structured magnetic graphene oxide@MIL-101(Fe): Photocatalysis under shell to remove diazinon and atrazine pesticides
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Design and preparation of core-shell structured magnetic graphene oxide@MIL-101(Fe): Photocatalysis under shell to remove diazinon and atrazine pesticides

机译:核心壳结构磁性石墨烯氧化物的设计和制备@ MIL-101(Fe):壳体上的光催化,去除二嗪酮和阿特拉嗪杀虫剂

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摘要

A magnetically separable support with core-shell morphology comprising amine-functionalized Fe3O4 wrapped with graphene oxide (AFG) was successfully prepared and used to support MIL-101(Fe). The ternary AFG@MIL-101(Fe) composite was investigated as a photo-Fenton catalyst for the degradation of recalcitrant diazinon (DIZ) and atrazine (ATZ) pesticides. After 105 min visible light irradiation, the AFG@30MIL-101(Fe) photocatalyst achieved 100 +/- 1% and 81 +/- 1% photocatalytic degradation efficiency for DIZ and ATZ pollutants, respectively. The recorded data indicated superior photocatalytic ability of the nanocomposite as compared to AF@30MIL-101 (Fe) and MIL-101(Fe) photocatalysts for the removal of both pollutants. Total Organic Carbon (TOC) analysis revealed 84 +/- 0.5% and 62 +/- 0.5% mineralization for DIZ and ATZ, respectively. The obtained results of characterization and also photocatalytic behavior suggest enhanced conversion between Fe2+/Fe3+ as well as fast electron transfer through interlayers of graphene oxide in this unique core-shell structure. After assaying the adsorption performance of photocatalyst, it was found that ATZ adsorption was more pronounced than DIZ. Furthermore, radical quenching tests revealed (OH)-O-center dot radicals were the main oxidizing players in this process even though the contribution of other species cannot be ruled out. It is noteworthy that magnetic stability was well preserved after 4 consecutive photocatalytic cycles, suggesting that this work can be a guideline to prepare efficient and stable magnetic Fenton systems.
机译:成功制备了具有包含胺官能化Fe3O4的磁性可分离的载体,并成功地制备了用石墨烯(AFG)包裹并用于载体MIL-101(Fe)。将三元AFG @ MIL-101(Fe)复合物作为光芬顿催化剂进行研究,用于降解重核二嗪酮(DIZ)和亚毒嗪(ATZ)杀虫剂。在105分钟的可见光照射后,AFG @ 30mil-101(Fe)光催化剂分别为二维和ATZ污染物的光催化降解效率达到100 +/- 1%和81 +/- 1%。与AF @ 30mil-101(Fe)和MIL-101(Fe)光催化剂相比,记录的数据表明纳米复合材料的优异光催化能力,用于去除两种污染物。总有机碳(TOC)分析分别显示了DIZ和ATZ的84 +/- 0.5%和62 +/- 0.5%矿化。所获得的表征结果和光催化行为提出了Fe2 + / Fe3 +之间的增强转化,并且通过该独特的核壳结构中的石墨烯膜中间层的快速电子转移。在测定光催化剂的吸附性能之后,发现ATZ吸附比DIZ更加明显。此外,显露(OH)-O中心点自由基的激进猝灭试验是该过程中的主要氧化球员,即使不能排除其他物种的贡献。值得注意的是,在连续的光催化循环后,磁稳定性很好地保存,表明这项工作可以是准备高效且稳定的磁性Fenton系统的指导。

著录项

  • 来源
    《Solar Energy》 |2020年第9期|990-1000|共11页
  • 作者单位

    Iran Univ Med Sci Res Ctr Environm Hlth Technol Tehran Iran|Iran Univ Med Sci Sch Publ Hlth Dept Environm Hlth Engn POB 14496-14535 Tehran Iran;

    Iran Univ Med Sci Res Ctr Environm Hlth Technol Tehran Iran|Iran Univ Med Sci Sch Publ Hlth Dept Environm Hlth Engn POB 14496-14535 Tehran Iran;

    Univ Polytech Hauts de France Univ Lille CNRS UMR 8520 IEMN Cent Lille F-59000 Lille France;

    Univ Jyvaskyla Dept Chem POB 35 FI-40014 Jyvaskyla Finland;

    Duy Tan Univ Inst Res & Dev Da Nang 550000 Vietnam|Duy Tan Univ Fac Environm & Chem Engn Da Nang 550000 Vietnam|Univ Southern Queensland Fac Hlth Engn & Sci Sch Civil Engn & Surveying West St Toowoomba Qld 4350 Australia;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photo-Fenton system; MIL-101(Fe); Diazinon; Atrazine; Amine-functionalized magnetite; Graphene;

    机译:光芬系统;MIL-101(Fe);Diazinon;亚得唑嗪;胺官能化磁铁矿;石墨烯;

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