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Adsorption and heterogeneous Fenton catalytic performance for magnetic Fe3O4/reduced graphene oxide aerogel

机译:磁Fe3O4 /氧化石墨烯氧化物气凝胶的吸附和异质Fenton催化性能

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摘要

Heterogeneous Fenton system has been widely used in water treatment because of its effective degradability in a wide range of pH. A two-step hydrothermal method for the synthesis of Fe3O4/reduced graphene oxide (RGO) aerogel was designed as an efficient and recyclable heterogeneous Fenton catalyst for degradation of methylene blue (MB). Firstly, the Fe(3)O(4)colloidal solution was synthesized by hydrothermal progress. Secondly, graphene oxide hydrogels were formed by the self-assembling and reduced to graphene during the hydrothermal reaction. Meanwhile, zero-dimensional Fe(3)O(4)nanoparticles were anchored onto the graphene oxide through the colloidal coagulation effect. The obtained samples were characterized by XRD, SEM, TEM, BET, Zeta, XPS, Raman, TG, and VSM. Adsorption isotherm and kinetics of MB onto Fe3O4/RGO composites revealed that the maximum adsorption capacity was 163.83 mg/g, and the adsorption process confirmed to the pseudo-second-order model. The determinants of heterogeneous Fenton system including oxidant concentration, initial pH, and reaction mechanism were investigated. The studies indicated that MB degradation efficiencies increased with the initial pH increasing (pH 3-10), showing a complete degradation in alkaline condition within 60 min. It is due to that catalytic reaction mainly occurs on the solid-liquid interface, as pH values increase, the electrostatic attraction between the cationic MB molecules and the surface of Fe3O4/RGO increases, the enhancement of adsorptivity is helpful to improve catalytic activity. The catalyst can be easily recovered by an applied magnetic field and exhibited excellent stability after five degradation cycles.
机译:由于其在广泛的pH值中,异质Fenton系统已广泛用于水处理。用于合成Fe3O4 /缩小的石墨烯氧化物(RGO)气凝胶的两步水热法设计为亚甲基蓝(MB)的有效且可回收的非均相FENTON催化剂。首先,通过水热进度合成Fe(3)O(4)胶体溶液。其次,通过自组装形成石墨烯氧化物水凝胶,并在水热反应过程中减少到石墨烯。同时,通过胶体凝固效果将零维Fe(3)o(4)α(4)α(4)纳米颗粒固定在石墨烯氧化物上。通过XRD,SEM,TEM,BET,Zeta,XPS,拉曼,TG和VSM表征获得的样品。 Mb上的吸附等温线和Mb的动力学表明,最大吸附能力为163.83mg / g,并且对伪二阶模型证实的吸附过程。研究了包括氧化剂浓度,初始pH和反应机理的异质FENTON系统的决定因素。研究表明,Mb降解效率随着初始pH增加而增加(pH 3-10),显示60分钟内碱性条件完全降解。正是由于催化反应主要发生在固液界面上,随着pH值的增加,阳离子MB分子与Fe3O4 / Rgo的表面之间的静电吸引力增加,吸附性的增强有助于改善催化活性。催化剂可以通过施加的磁场容易地回收,并在五个降解循环后表现出优异的稳定性。

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  • 来源
    《Journal of Materials Science》 |2020年第33期|共14页
  • 作者单位

    Northeastern Univ Sch Met Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Met Shenyang 110819 Peoples R China;

    Gen Res Inst Nonferrous Met &

    Grirem Adv Mat Co L Natl Engn Res Ctr Rare Earth Mat Beijing 100088 Peoples R China;

    Northeastern Univ Sch Met Shenyang 110819 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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