首页> 外文会议>International Manufacturing Science and Engineering Conference >TIP INDUCED GROWTH OF ZINC OXIDE NANOFLAKES THROUGH ELECTROCHEMICAL DISCHARGE DEPOSITION PROCESS AND THEIR OPTICAL CHARACTERIZATION
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TIP INDUCED GROWTH OF ZINC OXIDE NANOFLAKES THROUGH ELECTROCHEMICAL DISCHARGE DEPOSITION PROCESS AND THEIR OPTICAL CHARACTERIZATION

机译:通过电化学放电沉积工艺及其光学表征尖端诱导氧化锌纳米薄片的生长

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ZnO nanoflakes with varying thickness (10-120 nm) and width (250-1600 nm) were synthesized on the tooltip ((O)≤200 μm) by a novel route method called electrochemical spark deposition and growth method. The leaf-like nanostructures were found under varying pulsated DC voltage potentials (50-80V) at normal room temperature (25°C). Equimolar concentration (0.1M) of zinc nitrate hexahydrate (Zn(NO_3)2.6H_2O) and methenamine ((CH_2)_6N_4) HMTA) mixture was used as a growth (precursor) solution. The anodization time (deposition and growth time) was varying from 10 seconds to 25 seconds. Further, the consequence of pulse voltage on the growth morphology was examined critically. The structural evolution and elemental composition were investigated by field emission scanning electron microscopy (FESEM) and energy-dispersive X-ray spectroscopy (EDX) respectively. The size distribution (thickness and width) of ZnO nanoflakes were estimated by image processing software (Image J). Ultimately, the ultraviolet visible infrared spectroscopy (UV-Vis) analysis was carried out to determine the excitation energy of the zinc oxide nanoflakes. The estimated bandgap energy (via. Tauc plot) of the nanoflakes was found approximately 2.63 eV.
机译:通过一种称为电化学火花沉积和生长方法的新型路线方法,在工具提示((O)≤200μm)上合成具有不同厚度(10-120nm)和宽度(250-1600nm)的ZnO纳米薄片。在正常室温(25℃)下,在变化的脉冲直流电压(50-80V)下发现叶状纳米结构。使用等摩尔浓度(0.1M)硝酸锌六水合物(Zn(NO_3)2.6H_2O)和甲磺胺((CH_2)_6N_4)HMTA)混合物作为生长(前体)溶液。阳极氧化时间(沉积和生长时间)从10秒到25秒变化。此外,重视脉冲电压对生长形态的结果。通过现场发射扫描电子显微镜(FESEM)和能量分散X射线光谱(EDX)研究了结构演化和元素组合物。通过图像处理软件(Image J)估计了ZnO纳米薄片的尺寸分布(厚度和宽度)。最终,进行紫外线可见红外光谱(UV-Vis)分析以确定氧化锌纳米薄片的激发能量。纳米薄片的估计的带隙能量(通过。透视图)被发现约为2.63eV。

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