水热合成用于光催化的纳米结构ZnO薄膜

N. Shinde, Min Sik Nam, U. Patil, S. Jun
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引用次数: 0

摘要

氧化锌具有纳米结构材料的特点,适合于各种应用。在各种化学和物理合成ZnO纳米结构的方法中,水热法以其简单和环境友好的特点而备受青睐。采用水热法在氟掺杂氧化锡(FTO)衬底上成功合成了纳米结构ZnO薄膜。在原理图中讨论了各种纳米结构ZnO的生长机理。采用标准分析技术,即x射线衍射(XRD)和场发射扫描电镜(SEM)对制备的材料进行了表征。XRD研究表明,制备的ZnO纳米结构薄膜具有六方纤锌矿相的结晶性质。SEM图像显示,衬底表面覆盖有纳米结构的ZnO纳米棒。合成的纳米结构ZnO的紫外可见吸收光谱在365 nm处显示出强激子吸收带,表明形成了纳米结构ZnO薄膜。光致发光光谱显示两个发射峰,第一个峰在424 nm处,这是ZnO的带边发射,第二个宽峰在500 nm附近,可能是由于纳米结构ZnO中的氧空位造成的。喇曼测量峰位于,,表明纳米结构ZnO薄膜具有高结晶质量。我们相信纳米结构的ZnO材料可以有效地作为一种高活性和稳定的光催化应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrothermally Synthesis Nanostructure ZnO Thin Film for Photocatalysis Application
ZnO has nanostructured material because of unique properties suitable for various applications. Amongst all chemical and physics methods of synthesis of ZnO nanostructure, the hydrothermal method is attractive for its simplicity and environment friendly condition. Nanostructure ZnO thin films have been successfully synthesized on fluorine doped tin oxide (FTO) substrate using hydrothermal method. A possible growth mechanism of the various nanostructures ZnO is discussed in schematics. The prepared materials were characterized by standard analytical techniques, i.e., X-ray diffraction (XRD) and Field-emission scanning electron microscopy (SEM). The XRD study showed that the obtained ZnO nanostructure thin films are in crystalline nature with hexagonal wurtzite phase. The SEM image shows substrate surface covered with nanostructure ZnO nanrod. The UV-vis absorption spectrum of the synthesized nanostructure ZnO shows a strong excitonic absorption band at 365 nm which indicate formation nanostructure ZnO thin film. Photoluminescence spectra illustrated two emission peaks, with the first one at 424 nm due to the band edge emission of ZnO and the second broad peak centered around 500 nm possibly due to oxygen vacancies in nanostructure ZnO. The Raman measurements peaks observed at , , and indicated that nanostrusture ZnO thin film is high crystalline quality. We trust that nanostructure ZnO material can be effectively will be used as a highly active and stable phtocatalysis application.
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