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Evolution of Zinc Oxide Nanostructures Grown on Graphene by Ultrasonic Spray Pyrolysis and Its Statistical Growth Modelling

机译:超声喷雾热解法生长在石墨烯上的氧化锌纳米结构的演化及其统计增长模型

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摘要

The evolution of zinc oxide nanostructures grown on graphene by alcohol-assisted ultrasonic spray pyrolysis was investigated. The evolution of structures is strongly depended on pyrolysis parameters, i.e., precursor molarity, precursor flow rate, precursor injection/deposition time, and substrate temperature. Field-effect scanning electron microscope analysis, energy dispersive X-ray spectroscopy, X-ray diffraction, and transmission electron microscopy were used to investigate the properties of the synthesized nanostructures and to provide evidence for the structural changes according to the changes in the pyrolysis parameters. The optimum parameters to achieve maximum density and well-defined hexagonally shaped nanorods were a precursor molarity of 0.2 M, an injection flow rate of 6 ml/min, an injection time of 10 min, and a substrate temperature of 250–355 °C. Based on the experimental results, the response surface methodology (RSM) was used to model and optimize the independent pyrolysis parameters using the Box-Behnken design. Here, the responses, i.e., the nanostructure density, size, and shape factor, are evaluated. All of the computations were performed using the Design-Expert software package. Analysis of variance (ANOVA) was used to evaluate the results of the model and to determine the significant values for the independent pyrolysis parameters. The evolution of zinc oxide (ZnO) structures are well explained by the developed modelling which confirms that RSM is a reliable tool for the modelling and optimization of the pyrolysis parameters and prediction of nanostructure sizes and shapes.
机译:研究了醇辅助超声喷雾热解法在石墨烯上生长的氧化锌纳米结构的演化。结构的演变在很大程度上取决于热解参数,即前体摩尔浓度,前体流速,前体注入/沉积时间和底物温度。使用场效应扫描电子显微镜分析,能量色散X射线光谱,X射线衍射和透射电子显微镜研究合成纳米结构的性质,并根据热解参数的变化为结构变化提供证据。 。实现最大密度和轮廓分明的六角形纳米棒的最佳参数是前驱体摩尔浓度为0.2M,进样流速为6ml / min,进样时间为10min,底物温度为250-355°C。基于实验结果,使用Box-Behnken设计,使用响应面方法(RSM)对独立的热解参数进行建模和优化。在此,评价响应,即纳米结构密度,尺寸和形状因子。所有的计算都是使用Design-Expert软件包执行的。方差分析(ANOVA)用于评估模型结果并确定独立热解参数的显着值。所开发的模型很好地解释了氧化锌(ZnO)结构的演变,证实了RSM是用于热解参数的建模和优化以及纳米结构尺寸和形状预测的可靠工具。

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