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Novel layer-by-layer assembly of rGO-hybridised ZnO sandwich thin films for the improvement of photo-catalysed hydrogen production

机译:rGO杂化的ZnO夹层薄膜的新型逐层组装,用于改善光催化制氢

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摘要

Metal oxide semiconductor materials such as ZnO have tremendous potential as light absorbers for photocatalysed electrodes in the electrochemical reduction of water.Promoters such as rGO have been added to reduce the recombination losses of charge carriers and improve its photoelectrochemical activity.In this study,the effect of layer ordering on the charge transfer properties of rGO-hybridised ZnO sandwich thin films for the photo-catalysed electrochemical reduction of water was investigated.rGO-hybridised ZnO sandwich thin films were prepared via a facile electrode position technique using a layer-by-layer approach.The thin films were analysed using FESEM,XRD,Raman,PL,UV-vis,EI5 and CV techniques to investigate its morphological,optical and electrochemical properties.The FESEM images show the formation of distinct layers of rGO and ZnO nanorods/flakes via the layer-by-layer method.XRD confirmed the wurtzite structure of ZnO.PL spectroscopy revealed a reduction of photoemission intensity in the visible region (580 nm) when rGO was incorporated into the ZnO thin film.Among the six thin films prepared,ZnO/rGO showed superior performance compared to the other thin films (0.964 mA/cm) due to the presence of graphene edges which participate as heterogenous electrocatalysts in the photocatalysed electrolysis of water.rGO also acts as electron acceptor,forming an n-p heterojunction which improves the activity of ZnO to oxidise water molecules to O2.EIS revealed that the application of rGO as back contact (rGO/ZnO,rGO/ZnO/rGO) reduces the charge transfer resistance of a semiconductor thin film.Alternatively,rGO as front contact (ZnO/rGO,rGO/ZnO/rGO) improves the photo-catalysed electrolysis of water through the participation of the rGO edges in the chemical activation of water.The findings from this study indicate that the layer ordering significantly affects the thin film's electrostatic properties and this understanding can be further advantageous for tunable applications.
机译:ZnO等金属氧化物半导体材料在水的电化学还原中具有作为光催化电极的光吸收剂的巨大潜力。已添加rGO等促进剂以减少电荷载流子的复合损失并提高其光电化学活性。研究了层序对rGO杂化的ZnO夹层薄膜的光催化电化学还原水的电荷转移性能的影响。通过简便的电极定位技术,逐层制备rGO杂化的ZnO夹层薄膜使用FESEM,XRD,Raman,PL,UV-vis,EI5和CV技术对薄膜进行了分析,以研究其形态,光学和电化学性能.FESEM图像显示了rGO和ZnO纳米棒/薄片的不同层的形成。 XRD证实了ZnO的纤锌矿结构.PL光谱显示光发射强度降低当将rGO掺入ZnO薄膜时在可见光区域(580 nm)处的可见性。在制备的六种薄膜中,由于存在石墨烯,ZnO / rGO的性能优于其他薄膜(0.964 mA / cm)边缘作为多相电催化剂参与水的光催化电解.rGO还充当电子受体,形成np异质结,提高ZnO将水分子氧化为O2的活性.EIS揭示了rGO作为背接触(rGO / ZnO,rGO / ZnO / rGO)降低了半导体薄膜的电荷转移阻力。或者,rGO作为前接触(ZnO / rGO,rGO / ZnO / rGO)通过rGO的参与改善了水的光催化电解性能。这项研究的发现表明,层的有序性会显着影响薄膜的静电性能,这种理解对于可调谐的应用可能会更有利。 s。

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  • 来源
    《天然气化学(英文版)》 |2016年第2期|336-344|共9页
  • 作者单位

    Nanotechnology & Catalysis Research Centre(NANOCAT), 3rd Floor,Block A, Institute of Postgraduate Studies(IPS), University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Nanotechnology & Catalysis Research Centre(NANOCAT), 3rd Floor,Block A, Institute of Postgraduate Studies(IPS), University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Nanotechnology & Catalysis Research Centre(NANOCAT), 3rd Floor,Block A, Institute of Postgraduate Studies(IPS), University of Malaya, 50603 Kuala Lumpur, Malaysia;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 18:12:53
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