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Electrosynthesis of Y2O3 nanoparticles and its nanocomposite with POAP as high efficient electrode materials in energy storage device: Surface, density of state and electrochemical investigation

机译:Y2O3纳米粒子的电合成及其纳米复合材料,随着高效电极材料在储能装置中的高效电极材料:表面,密度和电化学研究

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Herein, high-purity Y2O3 nanopowder has been synthesized by the electrochemical method. The crystal structure of the compound has been investigated by means of X-ray diffraction (XRD). In order to evaluate the bonding characteristics of the obtained compound, Fourier transform infrared spectroscopy (FTIR) was carried out. Morphological properties of the nanopowders were examined through field emission scanning electron microscopy (FE-SEM). Furthermore, thermal studies were investigated through the thermogravimetric analysis (TGA). Not only from the XRD spectrum but also using the Nelson-Riley functions, various surface parameters referring to Y2O3 nanoparticles, e.g. particle size, texture coefficient and lattice constant, were determined. Additionally, Modified Scherer's Scherrer's formula (Williamson-Hall-isotropic strain model) was utilized to predict micro strain introduced into electrosynthesized Y2O3 nanoparticles. Full potential periodic density functional theory was used to derive detailed structural and electronic information of Y2O3 crystal. Revised Perdew-Burke-Ernzerhof (PBE) exchange-correlation functional was used for bulk structure relaxation and all post-processing calculations such as band structure and density of state (DOS) calculations were done with Heyd-ScuseriaErnzerhof (HSE) method. Then, hybrid POAP/Y2O3 films, acting as active electrodes in electrochemical super capacitor applications, were prepared through poly orthoaminophenol (POAP) electropolymerization in the presence of Y2O3 nanoparticles in order to enhance the electrochemical performance of the conductive polymer. The energy storage behavior observed for the prepared composite film can be attributed to synergistic effect existing between Y2O3 nanoparticles and the conductive polymer.
机译:这里,通过电化学方法合成了高纯度Y2O3纳米粉末。通过X射线衍射(XRD)研究了化合物的晶体结构。为了评估所得化合物的键合特性,进行傅里叶变换红外光谱(FTIR)。通过现场发射扫描电子显微镜(Fe-SEM)检查纳米粉末的形态学性质。此外,通过热重分析(TGA)研究了热研究。不仅来自XRD光谱,而且还使用尼尔逊 - 莱利函数,各种表面参数参考Y2O3纳米颗粒,例如,确定粒度,纹理系数和晶格常数。此外,改进的Scherer的Scherrer公式(Williamson-Hall - 各向同性菌株模型)用于预测引入电机化的Y2O3纳米颗粒中的微菌株。全潜能的周期密度泛函理论用于导出Y2O3晶体的详细结构和电子信息。修订的PERDEW-BURKE-ERNZERHOF(PBE)交换相关功能用于散装结构松弛,并使用HEYD-SCUSERIARERNZER(HSE)方法进行诸如频带结构和密度(DOS)计算的所有后处理计算。然后,通过在Y2O3纳米粒子存在下通过聚氨基氨基酚(POAP)电聚合制备用作电化学超电容器应用中的活性电极的杂种POAP / Y2O3薄膜,以提高导电聚合物的电化学性能。为制备的复合膜观察到的能量储存行为可归因于在Y2O3纳米颗粒和导电聚合物之间存在的协同作用。

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