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首页> 外文期刊>RSC Advances >Facile assembly of novel g-C3N4@expanded graphite and surface loading of nano zero-valent iron for enhanced synergistic degradation of tetracycline
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Facile assembly of novel g-C3N4@expanded graphite and surface loading of nano zero-valent iron for enhanced synergistic degradation of tetracycline

机译:新型g-C3N4 @膨胀石墨的易于组装和纳米零价铁的表面负载,可增强四环素的协同降解

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摘要

The two-stage removal process of tetracycline (TC) in aqueous solutions using a novel photocatalyst based on nano-zero-valent iron (NZVI), g-C _(3) N _(4) and expanded graphite by carbon layer (EGC) is reported for the first time. The composite (NZVI/g-C _(3) N _(4) @EGC) exhibits remarkable adsorption, reduction ability and visible light activity over the reaction course. Compared with pristine g-C _(3) N _(4) (25.9%) and pure NZVI (45.9%), NZVI/g-C _(3) N _(4) @EGC achieves high degradation efficiency of TC (98.5%) due to the formation of a heterogeneous photo-Fenton system. This study shows that synergistic effects are achieved in the reaction system, including maintaining the reduction ability of NZVI and enhancing the photocatalytic activity of g-C _(3) N _(4) by facilitating the separation of photogenerated electrons (e ~(?) ) and holes (h ~(+) ). TC removal involved a two-stage process of adsorption–reduction and photo-degradation. The quencher experiments determined that holes (h ~(+) ) and superoxide radicals (˙O _(2) ~(?) ) are the major reactive species in the degradation of TC. The degradation pathways of TC were proposed based on the analysis of the intermediates. In addition, NZVI/g-C _(3) N _(4) @EGC revealed a high stability in a five-cycle test and good magnetic properties for facile separation from aqueous solutions. From an application viewpoint, NZVI/g-C _(3) N _(4) @EGC has favorable prospects in the direction of the photocatalytic degradation of antibiotic wastewater.
机译:使用基于纳米零价铁(NZVI),gC _(3)N _(4)和膨胀石墨的新型光催化剂通过碳层(EGC)去除水溶液中四环素(TC)的两阶段过程为第一次报告。在反应过程中,复合材料(NZVI / g-C _(3)N _(4)@EGC)表现出显着的吸附,还原能力和可见光活性。与原始gC _(3)N _(4)(25.9%)和纯NZVI(45.9%)相比,NZVI / gC _(3)N _(4)@EGC可实现TC的高降解效率(98.5%)形成异质光芬顿系统。这项研究表明,在反应体系中实现了协同作用,包括通过促进光生电子(e〜(?))的分离来维持NZVI的还原能力和增强gC _(3)N _(4)的光催化活性。和孔(h〜(+))。 TC的去除涉及吸附-还原和光降解的两个阶段。淬灭剂实验确定,空穴(h〜(+))和超氧化物自由基(˙O_(2)〜(?))是TC降解的主要反应物种。在对中间体进行分析的基础上,提出了TC的降解途径。此外,NZVI / g-C _(3)N _(4)@EGC在五周期测试中显示出高稳定性,并具有良好的磁性,可轻松从水溶液中分离。从应用的角度来看,NZVI / g-C _(3)N _(4)@EGC在光催化降解抗生素废水方面具有良好的前景。

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