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Illustration of charge transfer in graphene-coated hexagonal ZnO photocatalysts using Kelvin probe force microscopy

机译:用开尔文探针力显微镜图示石墨烯包覆的六角形ZnO光催化剂中的电荷转移

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摘要

A graphene coated hexagonal ZnO (HZO@Gr) with enhanced activity in photocatalysis was synthesized. However, the photoinduced charge transfer behavior and the beneficial role of graphene in promoting photocatalytic reactions have not been sufficiently investigated experimentally. In this paper, the surface potentials of the ±(0001)-polar plane of HZO (Zn-polar plane and O-polar plane), graphene, graphene/Zn-polar plane and graphene/O-polar plane were measured using Kelvin probe force microscopy (KPFM). On the basis of the KPFM results, the respective Fermi levels were calculated and the internal electric field (IEF) of HZO was confirmed. Taking the IEF of HZO into consideration, the three-dimensional band diagrams of the HZO@Gr composites in methyl blue (MB) solution in the dark and under UV-visible irradiation after equilibrium were proposed. Accordingly, it is found that there could emerge different interactions between graphene and HZO at the ±(0001)-polar plane of HZO. Furthermore, the photogenerated holes and electrons tend to migrate to opposite directions. With the participation of graphene and IEF, the composites show a decrease in possibility of charge recombination. As a result, the active groups, namely ˙OH and ˙O2? radicals, could be mainly generated atear the O-polar plane and Zn-polar plane, respectively. This work can serve as a supplemental explanation of the charge transfer during the photocatalytic process at the polar ZnO/graphene composite surface.
机译:合成了具有光催化活性的石墨烯包覆的六方ZnO(HZO @ Gr)。然而,光诱导的电荷转移行为和石墨烯在促进光催化反应中的有益作用尚未得到足够的实验研究。本文使用开尔文探针测量了HZO的±(0001)极平面(Zn极平面和O极平面),石墨烯,石墨烯/ Zn极平面和石墨烯/ O极平面的表面电势。力显微镜(KPFM)。根据KPFM结果,计算各自的费米能级,并确认HZO的内部电场(IEF)。考虑到HZO的IEF,提出了在平衡后在黑暗和紫外可见光下甲基蓝(MB)溶液中HZO @ Gr复合材料的三维能带图。因此,发现在HZO的±(0001)极平面处,石墨烯和HZO之间可能出现不同的相互作用。此外,光生空穴和电子倾向于向相反方向迁移。在石墨烯和IEF的参与下,复合材料显示出电荷复合的可能性降低。结果,可以主要产生活性基团,即 2 自由基。分别在O极平面和Zn极平面附近。这项工作可以作为对光催化过程中极性ZnO /石墨烯复合材料表面电荷转移的补充解释。

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