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氧化锌纳米棒对石墨烯纳米片光催化性能和生物活性的协同作用。

Synergistic effect of zinc oxide nanorods on the photocatalytic performance and the biological activity of graphene nano sheets.

作者信息

Ghanem Ahmed F, Badawy Abdelrahman A, Mohram Maysa E, Abdel Rehim Mona H

机构信息

Packaging Materials Department, Division of Chemical Industries Research, National Research Centre, 33 El Behooth St., Dokki Giza, Egypt.

Physical Chemistry Department, Division of Inorganic Chemical Industries and Mineral Resources, National Research Centre, 33 El Behooth St., Dokki Giza, Egypt.

出版信息

Heliyon. 2020 Feb 3;6(2):e03283. doi: 10.1016/j.heliyon.2020.e03283. eCollection 2020 Feb.

Abstract

In this work, decoration of the graphene surface with 5 wt. % ZnO nanorods (ZnO NRs), to ensure the potential photocatalytic performance of the formed nanocomposites, is demonstrated. Graphene oxide (GO) was synthesized with Hummer method followed by reduction to give reduced graphene oxide (RGO). The adjustable nano-compositing exhibited long-sought workability not only in in-situ incorporation of nanorods while reduction of graphene oxide (IZG) but also in ex-situ mixing of RGO or GO with the nanorods, (EZG) and (ZGO) respectively. The demineralization of synthetic wastewater has been evaluated by chemical oxygen demand and the obtained nanocomposites possess enhanced photocatalytic activities with 30 % and 35% over pure RGO and GO, respectively. This higher efficiency could be attributed to the synergistic effect between ZnO and the planner structure of graphene sheets which developed unprecedented polycrystalline structure. Also, the results proved that even the RGO or GO have played a dual function in photocatalysis, adsorption, and degradation. Also, the bactericidal effect of the prepared samples was studied against deleterious microorganisms. The findings of this work pave the way for the new generation of highly efficient photocatalysts based graphene with economic attraction and environmental impact.

摘要

在这项工作中,展示了用5 wt.%的ZnO纳米棒(ZnO NRs)修饰石墨烯表面,以确保所形成的纳米复合材料具有潜在的光催化性能。采用Hummer法合成氧化石墨烯(GO),随后将其还原得到还原氧化石墨烯(RGO)。这种可调节的纳米复合不仅在氧化石墨烯还原过程中原位掺入纳米棒(IZG)时表现出长期寻求的可加工性,而且在RGO或GO分别与纳米棒进行异位混合(EZG)和(ZGO)时也表现出可加工性。通过化学需氧量评估了合成废水的脱矿质情况,所获得的纳米复合材料分别比纯RGO和GO具有更高的光催化活性,提高了30%和35%。这种更高的效率可归因于ZnO与石墨烯片层平面结构之间的协同效应,该协同效应形成了前所未有的多晶结构。此外,结果证明即使是RGO或GO在光催化、吸附和降解中也发挥了双重作用。此外,还研究了制备的样品对有害微生物的杀菌效果。这项工作的研究结果为新一代具有经济吸引力和环境影响的基于石墨烯的高效光催化剂铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5454/7005451/f4ce53e76f77/gr1.jpg

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