基于价态组合的高熵氧化物:设计与实践

Lei Tang, Zemin Li, Kepi Chen, Cuiwei Li, Xiaowen Zhang, L. An
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引用次数: 41

摘要

高熵氧化物(HEOs)是一类具有广泛应用前景的新型材料。设计heo需要同时考虑几何兼容性和电平衡。然而,在选择制造heo的组成材料时,目前还没有一种方法可以系统地考虑这两个因素。在这里,我们提出了一个两步走的策略,首先根据取代阳离子的价组合将待探索的HEO系统划分为多个子系统;然后在选择合适的取代阳离子时考虑几何相容性。我们通过使用A(5B0.2)O3钙钛矿作为模型系统来证明这一策略。我们证明了该系统可以划分为12个子系统。十个子系统形成了单相立方钙钛矿,两个子系统具有部分有序结构。单相的形成与Goldschmidt容差因子有关,而有序结构的形成主要与阳离子价差有关。我们预计该策略适用于探索其他系统中的heo。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-Entropy Oxides Based on Valence Combinations: Design and Practice
High-entropy oxides (HEOs) are a new class of materials that are promising for a wide range of applications. Designing HEOs needs to consider both geometric compatibility and electrical equilibrium. However, there is currently no available method to systematically consider these two factors when selecting constituent materials for making HEOs. Here we propose a two-step strategy, where a HEO system to be explored is first partitioned into multiple subsystems based on the valence combinations of substituted cations; the geometric compatibility is then considered in selecting suitable substituted cations. We demonstrate this strategy by using A(5B0.2)O3 perovskite as a model system. We show that the system can be partitioned into 12 subsystems. Ten of the subsystems have formed a single-phase cubic perovskite, while two have partially ordering structure. The formation of single phases is correlated to Goldschmidt's tolerance factor, while the formation of the ordering structure is mainly correlated to cation-valence difference. We anticipate that this strategy is applicable to exploring HEOs in other systems.
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