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Electrocatalytic degradation of diuron herbicide using three-dimensional carbon felt/β-PbO_2 anode as a highly porous electrode: Influencing factors and degradation mechanisms

机译:利用三维碳毡/β-PbO_2阳极作为高孔电极的电催化降解利尿除草剂:影响因素和降解机制

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摘要

Traditional planar PbO2 anodes have been used extensively for the electrocatalytic degradation process. However, by using porous PbO2 anodes that have a three-dimensional architecture, the efficiency of the process can be significantly upgraded. In the current study, carbon felt (CF) with a highly porous structure and a conventional planar graphite sheet (G) were used as electrode substrate for PbO2 anodes. Both CF/beta-PbO2 and G/beta-PbO2 anodes were prepared by the anodic deposition method. The main properties of the electrodes were characterized by XRD, EDX-mapping, FESEM, and BET-BJH techniques. The electrocatalytic degradation of diuron using three-dimensional porous CF/beta-PbO2 anode was modeled and optimized by a rotatable central composite design. After optimizing the process, the ability of porous CF/beta-PbO2 and planar G/beta-PbO2 anodes to degrade and mineralize diuron was compared. The electrocatalytic degradation of the diuron was well described by a quadratic model (R-2 0.99). Under optimal conditions, the kinetics of diuron removal using CF/beta-PbO2 anode was 3 times faster than the G/beta-PbO2 anode. The energy consumed for the complete mineralization of diuron using CF/beta-PbO2 anode was 2077 kWh kg(-1) TOC. However, the G/beta-PbO2 anode removed only 65% of the TOC by consuming 54% more energy. The CF/beta-PbO2 had more stability (115 vs. 91 h), larger surface area (1.6287 vs. 0.8565 m(2) g(-1)), and higher oxygen evolution potential (1.89 vs. 1.84 V) compared to the G/beta-PbO2. In the proposed pathways for diuron degradation, the aromatic ring and groups of carbonyl, dimethyl urea, and amide were the main targets for HO center dot radical attacks. (C) 2021 Elsevier Ltd. All rights
机译:传统的平面PBO2阳极已广泛用于电催化降解过程。然而,通过使用具有三维架构的多孔PBO2阳极,可以显着升级该过程的效率。在目前的研究中,用具有高孔结构和常规平面石墨片(G)的碳毡(CF)用作PBO2阳极的电极基板。通过阳极沉积方法制备CF / BETA-PBO2和G /β-PBO2阳极。通过XRD,EDX映射,FESEM和Bet-BJH技术的特征在于电极的主要性质。利用三维多孔CF /β-PBO2阳极的Diuron的电催化降解通过可旋转的中央复合设计进行了建模和优化。在优化过程之后,比较了多孔CF /β-PBO2和平面G /β-PBO2阳极降解和矿化Diuron的能力。通过二次模型(R-2> 0.99)很好地描述了Diuron的电催化降解。在最佳条件下,使用CF /β-PbO2阳极的Diuron除去动力学比G /β-PbO2阳极快3倍。使用CF /β-PBO2阳极的Diuron完全矿化消耗的能量为2077 kWh kg(-1)TOC。然而,G / BETA-PBO2阳极通过消耗54%的能量除去了65%的TOC。 CF / BETA-PBO2具有更多的稳定性(115 vs.91h),较大的表面积(1.6287 vs.0.8565m(2)g(-1)),与g / beta-pbo2。在所提出的利尿剂降解的途径中,芳环和羰基,二甲基脲和酰胺基团是HO中心点自由基攻击的主要靶标。 (c)2021 elestvier有限公司

著录项

  • 来源
    《Chemosphere》 |2021年第8期|130141.1-130141.16|共16页
  • 作者单位

    Hamadan Univ Med Sci Fac Hlth Dept Environm Hlth Engn Hamadan Hamadan Iran|Hamadan Univ Med Sci Res Ctr Hlth Sci Hamadan Hamadan Iran;

    Hamadan Univ Med Sci Fac Hlth Dept Environm Hlth Engn Hamadan Hamadan Iran|Hamadan Univ Med Sci Res Ctr Hlth Sci Hamadan Hamadan Iran;

    Hamadan Univ Med Sci Fac Hlth Dept Environm Hlth Engn Hamadan Hamadan Iran|Hamadan Univ Med Sci Res Ctr Hlth Sci Hamadan Hamadan Iran;

    Hamadan Univ Med Sci Dept Environm Hlth Engn Hamadan Hamadan Iran;

    Bu Ali Sina Univ Fac Chem Hamadan Hamadan Iran;

    Bu Ali Sina Univ Fac Chem Hamadan Hamadan Iran;

    Bu Ali Sina Univ Fac Chem Hamadan Hamadan Iran;

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

    Porous carbon felt/beta-PbO2; Graphite/beta-PbO2; Highly porous anode; Networked anode; Three-dimensional anode;

    机译:多孔碳毡/β-PbO2;石墨/β-PbO2;高度多孔阳极;网络阳极;三维阳极;
  • 入库时间 2022-08-19 02:48:08

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