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首页> 外文期刊>Journal of nanoscience and nanotechnology >Electrochemical Synthesis of ZnO Nanorods/Nanotubes/Nanopencils on Transparent Aluminium-Doped Zinc Oxide Thin Films for Photocatalytic Applications
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Electrochemical Synthesis of ZnO Nanorods/Nanotubes/Nanopencils on Transparent Aluminium-Doped Zinc Oxide Thin Films for Photocatalytic Applications

机译:在透明铝掺杂氧化锌薄膜上的光催化电化学合成ZnO纳米棒/纳米管/纳米管

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We report an electrochemical synthesis of homogeneous and well-aligned ZnO nanorods (N As) on transparent conducting aluminium-doped zinc oxide (AZO) thin films as electrodes. The selected ZnO NRs was then chemically corroded in HCl and KCl aqueous solutions to form nanopencils (NPs), and nanotubes (NTs), respectively. A DC magnetron sputtering was employed to fabricate AZO thin films at various thicknesses. The obtained AZO thin films have a c-direction orientation, transmittance above 80% in visible region, and sheet resistance approximately 40 Omega/sq. They are considered to be relevant as electrodes and seeding layers for electrochemical. The ZnO NRs are directly grown on the AZOs without a need of catalysts or additional seeding layers at temperature as low as 85 degrees C. Their shapes are strongly associated with the AZO thickness that provides a valuable way to control the diameter of ZnO NRs grown atop. With the addition of HCI and KCl aqueous solutions, ZnO NRs were modified their shape to NPs and NTs with the reaction time, respectively. All the ZnO NRs, NPs, and NTs are preferred to grow along c-direction that indicates a lattice matching between AZO thin films and ZnO nanostructrures. Photoluminescence spectra and XRD patterns show that they have good crystallinities. A great photocatalytic activity of ZnO nanostructures promises potential application in environmental treatment and protection. The ZnO NTs exhibits a higher photocatalysis than others possibly due to the oxygen vacancies on the "surface and the polarizability of Zn2+ and O2-.
机译:我们报告了作为电极的透明导电掺铝氧化锌(AZO)薄膜上均匀且排列良好的ZnO纳米棒(N As)的电化学合成。然后将选定的ZnO NRs在HCl和KCl水溶液中进行化学腐蚀,分别形成纳米铅笔(NPs)和纳米管(NTs)。使用直流磁控溅射来制造各种厚度的AZO薄膜。所获得的AZO薄膜具有c方向的取向,在可见光区域的透射率高于80%,并且薄层电阻约为40Ω/ sq。它们被认为与电化学的电极和晶种层有关。 ZnO NRs可在低至85摄氏度的温度下直接在AZO上生长,而无需催化剂或额外的晶种层。它们的形状与AZO厚度密切相关,从而提供了一种控制顶部生长的ZnO NRs直径的有价值的方法。加入HCl和KCl水溶液后,ZnO NRs的形状随反应时间分别改变为NPs和NTs。所有的ZnO NR,NP和NTs都优选沿c方向生长,这表明AZO薄膜和ZnO纳米结构之间的晶格匹配。光致发光光谱和XRD图谱表明它们具有良好的结晶度。 ZnO纳米结构的巨大光催化活性有望在环境处理和保护中得到潜在应用。 ZnO NTs表现出比其他更高的光催化作用,这可能是由于“表面上的氧空位以及Zn2 +和O2-的极化率”。

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