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关于活性自由基和吸附能力对还原氧化石墨烯/P25 复合材料光降解气态乙醛协同作用的新认识。

New insights into the synergistic effect of active radicals and adsorptive ability on the photodegradation of gaseous acetaldehyde over reduced graphene Oxide/P25 composite.

机构信息

Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China; University of Chinese Academy of Sciences, 19 Yuquan Road, Beijing 100049, China.

Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China.

出版信息

J Hazard Mater. 2019 Dec 15;380:120814. doi: 10.1016/j.jhazmat.2019.120814. Epub 2019 Jul 10.

Abstract

Although coupling reduced graphene oxide (RGO) with TiO is believed to enhance the photocatalysis through the light utilization, studies on its photothermal conversion effect are rarely reported. Herein, RGOP (reduced graphene oxide/P25) was synthesized to explore roles of the enhanced light adsorption and photothermal conversion in the photocatalytic process. It was found that although RGOP had increased absorbance, it actually possessed lower available light utilization compared with P25. In the synergistic effect of available light utilization, transfer resistance and hydrophilicity, RGOP exhibited less superoxide radicals but more hydroxyl radicals. In the presence of scavenger experiments, O was proved to play the predominant role in the photocatalytic process, while OH was the secondary one. In comparison to P25, the change of active radicals of RGOP was adverse to its photocatalysis. However, due to the superior adsorptive property of RGOP, it exhibited higher photocatalytic activity than P25. The improved photocatalytic activity of RGOP was ascribed to its superior adsorptive ability aside from active radicals (O-, OH).

摘要

虽然将还原氧化石墨烯 (RGO) 与 TiO 耦合被认为可以通过利用光来增强光催化作用,但关于其光热转换效果的研究却很少有报道。在此,合成了 RGOP(还原氧化石墨烯/P25)以探索增强的光吸收和光热转换在光催化过程中的作用。结果发现,尽管 RGOP 的吸收度增加了,但与 P25 相比,它实际上的有效光利用率更低。在有效光利用、转移电阻和亲水性的协同作用下,RGOP 表现出较少的超氧自由基,但更多的羟基自由基。在清除剂实验中,证明 O 在光催化过程中起主要作用,而 OH 则起次要作用。与 P25 相比,RGOP 活性自由基的变化不利于其光催化作用。然而,由于 RGOP 具有优异的吸附性能,其光催化活性高于 P25。除了活性自由基(O-、OH)之外,RGOP 优越的吸附能力也是其光催化活性提高的原因。

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