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首页> 外文期刊>Journal of Colloid and Interface Science >One-step fabrication of oxygen vacancy-enriched Fe@Ti/C composite for highly efficient degradation of organic pollutants through persulfate activation
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One-step fabrication of oxygen vacancy-enriched Fe@Ti/C composite for highly efficient degradation of organic pollutants through persulfate activation

机译:通过过硫酸盐活化进行氧空型富含Fe @ Ti / C复合材料的一步制备氧空位富含Fe @ Ti / C复合材料

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In this work, cost-effective, magnetic carbon-supported Fe@Ti composite (Fe@Ti/Cs) with abundant active sites was synthesized by one-step carbothermal reduction of ilmenite with the assistance of microwave oven and utilized as a highly efficient persulfate (PS) activator for the wastewater purification. The coexistence of Fe0/2+/3+, Ti3+/4+ and oxygen vacancies on Fe@Ti/Cs was found to favor for the electron transfer to PS, which facilitate the generation of reactive oxygen species (ROS). Catalytic experiment results showed that the Fe@Ti/C-4 produced from ilmenite/carbon with a mass ratio of 4:1 exhibited the best catalytic activation performance towards PS for the degradation of Rhodamine B (RhB). Usage of merely 0.12 g/L Fe@Ti/C-4 enabled the removal of 94.01% RhB (200 mg/L) within 30 min in the PS containing system, significantly outperforming ilmenite + PS (29.29%) and carbon + PS (49.91%) systems tested under the same conditions. The physico-chemical properties of the produced Fe@Ti/Cs before and after the reaction were carefully characterized. Radical scavenging experiments and electron paramagnetic resonance (EPR) analysis were carried out to better understand the underlying mechanism. The results indicate that oxygen vacancies in Fe@Ti/C-4 promoted the electron transfer and participated in the transition metal redox cycle to generate ROS in the PS-containing system, which was highly efficient for degrading RhB into small molecules and finally enabling mineralization. This work offers a new perspective for designing highly efficient and stable PS activators with long life derived from natural ore for environmental remediation. (C) 2020 Elsevier Inc. All rights reserved.
机译:在这项工作中,成本效益高,磁性碳支持Fe@Ti复合材料(Fe@Ti/采用微波炉辅助钛铁矿一步碳热还原法合成了具有丰富活性中心的Cs,并将其作为高效过硫酸盐(PS)活化剂用于废水净化。Fe0/2+/3+、Ti3+/4+和氧空位共存Fe@Ti/发现Cs有利于电子转移到PS,从而促进活性氧(ROS)的生成。催化实验结果表明Fe@Ti/以钛铁矿/碳(质量比为4:1)为原料制备的C-4对PS降解罗丹明B(RhB)的催化活性最好。仅使用0.12克/升Fe@Ti/C-4能够在含PS的系统中在30分钟内去除94.01%的RhB(200 mg/L),显著优于在相同条件下测试的钛铁矿+PS(29.29%)和碳+PS(49.91%)系统。产品的物理化学性质Fe@Ti/对反应前后的Cs进行了仔细的表征。进行了自由基清除实验和电子顺磁共振(EPR)分析,以更好地了解其潜在机制。结果表明,氧空位Fe@Ti/在含PS的体系中,C-4促进电子转移并参与过渡金属氧化还原循环生成ROS,这对于将RhB降解为小分子并最终实现矿化是高效的。这项工作为设计高效、稳定、长寿命的天然矿石PS活化剂用于环境修复提供了新的视角。(C) 2020爱思唯尔公司版权所有。

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