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Effect of trisodium citrate on morphological, structural, and optical properties of fluorine-doped ZnO structures

机译:柠檬酸三钠对氟掺杂ZnO结构的形貌、结构和光学性能的影响

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摘要

In this work, we present the effect of trisodium citrate (TSC) addition via a hydrothermal method on the morphological, compositional, structural, and optical changes of fluorine-doped zinc oxide (FZO) on silicon substrates. Field emission scanning electron microscopy revealed vertically aligned nanorods for FZO and pebble and block-like microstructures of different sizes upon TSC addition. X-ray diffraction analysis revealed a hexagonal structure for all the samples. Upon addition of TSC, the sample growth along the c-axis was inhibited strongly and the growth along the a-axis was developed. The crystallite size increased from 28.73 nm to 30.38 nm upon addition of TSC. The oxygen deficiency and, the presence of zinc, oxygen, fluorine, and sodium in the studied samples were confirmed by energy-dispersive X-ray analysis and X-ray photoelectron spectroscopy (XPS). Ultraviolet (UV)-visible analysis revealed the optical energy band gap increment from 3.204 eV to 3.241 eV with TSC addition. Photoluminescence (PL) analysis revealed a significant improvement in the intensity ratio of the near band emission to deep level emission from 5.44 to 12.59 upon TSC addition, indicating crystal quality improvement. Both UV-visible and PL analyses showed that the studied samples were blue-shifted upon TSC addition. The different morphologies with promising properties could be employed in different applications, eliminating the complexity and reducing cost in the fabrication of hybrid structures, and nano/microcomposites.
机译:本文研究了柠檬酸三钠(TSC)水热法对硅衬底上氟掺杂氧化锌(FZO)形貌、组成、结构和光学变化的影响。场发射扫描电镜显示,加入TSC后,FZO纳米棒和卵石以及不同尺寸的块状微观结构垂直排列。X射线衍射分析显示所有样品均呈六边形结构。加入TSC后,样品沿c轴的生长受到强烈抑制,沿a轴的生长得到发展。添加TSC后,晶粒尺寸从28.73 nm增加到30.38 nm。通过能量色散 X 射线分析和 X 射线光电子能谱 (XPS) 证实了所研究样品中缺氧以及锌、氧、氟和钠的存在。紫外-可见光分析显示,添加TSC后,光能带隙从3.204 eV增加到3.241 eV。光致发光(PL)分析表明,添加TSC后,近带发射与深能发射的强度比从5.44显著提高到12.59,表明晶体质量有所提高。紫外-可见光和PL分析均表明,添加TSC后,所研究样品发生蓝移。具有不同性能的不同形态可以用于不同的应用,从而消除了混合结构和纳米/微复合材料制造的复杂性并降低了成本。

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