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Strategically designed reduced graphene oxide based magnetic responsive nanocatalysts for the attenuation of recalcitrant pollutants

机译:战略设计的石墨烯基氧化物基氧化型磁性响应纳米催化剂,用于催化醋酸污染物

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The present work attempts to capture the augmentation in the catalytic activity of ferrite (MFe2O4) nanoparticles by employing reduced graphene oxide (RGO) as its solid support that not only provides space for dispersion but also increases the catalytically active sites of nanoferrites. MFe2O4/xRGO (M = Co, Ni and x = 0, 10, 20, 30, 40 wt% GO) were prepared via facile hydrothermal method and their physical characteristics were probed by FTIR, XRD, FE-SEM, HR-TEM, VSM and BET analysis. Furthermore, the fabricated samples were explored as versatile catalysts for the remediation of hazardous environmental pollutants via oxidation of a cationic dye, an anionic dye and an antibiotic; and reduction of 2-, 3- and 4-nitrophenol. The catalytic behavior of MFe2O4/xRGO was found to be dependent on presence of RGO as solid support as well as on the amount of GO added. The synergistic interaction between dispersed ferrite nanoparticles and RGO sheet was the reason behind the superior catalytic activity of RGO supported nanoferrites in comparison with pure nanoferrites, whereas the increase in specific surface area accounted for augmented activity with increased GO content. High reaction rates were observed even in the absence of light irradiation using MFe2O4/RGO nanocomposites for oxidation reactions. However, for the reduction of nitrophenols, the introduction of RGO resulted in the transformation of inactive CoFe2O4 into highly active catalysts. Also, the usage of just 2 mol% of RGO supported nanoferrites gave astonishing reduction rates. Moreover, the nanocomposites manifested excellent recyclability furthering the humanitarian cause to remove environmental pollutants.
机译:目前的作品试图通过使用还原的石墨烯(RGO)作为其固体载体来捕获铁氧体(MFE2O4)纳米颗粒的催化活性的增强,这不仅为分散的空间提供了纳米氧铁片的催化活性位点。 MFE2O4 / XRGO(M = CO,Ni和X = 0,10,20,30,40wt%Go)通过容易的水热法制备,并通过FTIR,XRD,Fe-SEM,HR-TEM探测它们的物理特性, VSM和BET分析。此外,通过氧化阳离子染料,阴离子染料和抗生素来探索制造的样品作为修复危险环境污染物的通络催化剂;还减少2-,3-和4-硝基苯酚。发现MFE2O4 / XRGO的催化行为依赖于RGO的存在作为固体支持以及加入的量。分散铁氧体纳米粒子和rgo板之间的协同相互作用是与纯纳菲尔的rgo负载纳米铁催化活性背后的原因,而特异性表面积的增加占增纳含量增加的增强活性。即使在没有使用MFE2O4 / RGO纳米复合材料的氧化反应的情况下,也观察到高反应速率。然而,为了减少硝基苯酚,RGO的引入导致无活性COFE2O4转化为高活性催化剂。而且,仅2mol%的RGO支持的纳米氧铁片的使用产生了惊人的还原率。此外,纳米复合材料表现出优异的可回收性,进一步促进人道主义原因去除环境污染物。

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