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Amorphization model of nanostructured composite solid electrolytes

机译:纳米结构复合固体电解质的非晶态模型

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摘要

AbstractIn the last decades, extensive research has been undertaken to find solid electrolytes that might increase the power and safety of promising electrochemical devices such as lithium batteries, supercapacitors, and solid oxide fuel cells. It is mainly based on the screening of advanced functional suprastructures and developing special synthesis procedures to obtain nanosized materials, allowing one to increase ionic conductivity. That’s why special attention is paid to composite solid electrolytes. In this work we use the accumulated knowledge on the physical chemistry of metals and alloys to describe the amorphization effects. It is known that amorphization at the interphase boundaries (interfaces) and grain boundaries noticeably increases (sometimes by orders of magnitude) the ionic transfer rate and, therefore, affects the functional properties of nanostructured composite solid electrolytes. In the theoretical model proposed, we have attempted to elucidate the reasons, inducing the amorphization effects which are observed upon the crystallization of inorganic eutectics and composite formation. We have especially used the approximation of rigid discs, considered, unit-cell volumes. In the context of the theory, describing the amorphization as an excess molar volume arising upon the crystallization of metals and alloys, we have established that the degree of amorphization depends not only on the synthesis conditions, but also on the incommensurability of crystal unit cells in the components. The findings can be useful in the elaboration of novel inorganic materials for various applications.
机译:<标题>摘要 在过去的几十年中,已经进行了广泛的研究,以找到可能会增加有希望的电化学器件,例如锂电池,超级电容器和固体氧化物燃料电池的电力和安全性的固体电解质。它主要基于筛查先进的功能性上华平结构和开发特殊的合成程序来获得纳米化材料,允许一种增加离子电导率。这就是为什么特别注意复合固体电解质。在这项工作中,我们使用对金属和合金物理化学的累积知识来描述非晶化作用。众所周知,在相位边界(界面)和晶界处明显增加(有时按幅度的顺序)离子转移率,因此影响纳米结构复合固体电解质的功能性质。在提出的理论模型中,我们试图阐明原因,诱导在无机共肠和复合材料结晶后观察到的非晶化效果。我们特别使用刚性光盘的近似,考虑,单元电池体积。在理论的背景下,描述了在金属和合金结晶后产生的过量摩尔体积的非摩尔体积,我们已经确定了非晶化程度不仅取决于合成条件,而且还取决于晶体单元细胞的不允许性组件。该研究结果可用于制定各种应用的新型无机材料。

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