Jin-Da Luo, Yixi Zhang, Xiaobin Cheng, Dr. Feng Li, Hao-Yuan Tan, Mei-Yu Zhou, Zi-Wei Wang, Xu-Dong Hao, Dr. Yi-Chen Yin, Prof. Bin Jiang, Prof. Hong-Bin Yao
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引用次数: 0
摘要
卤化物超离子导体(SIC)因其在全固态电池中的潜在应用而备受研究关注。开发此类 SIC 的一个关键挑战是探索和设计能够实现离子快速移动的卤化物结构框架。在这项工作中,我们发现传统卤化物离子导体所共有的紧密堆积阴离子框架在快速离子传导方面面临着内在的限制,无论其结构如何调节。除了紧密堆积阴离子框架,我们还发现非紧密堆积阴离子框架在实现超离子传导性方面具有巨大潜力。值得注意的是,我们发现非紧密堆积的 UCl3 型框架对各种载体离子(包括 Li+、Na+、K+ 和 Ag+)都表现出超离子导电性,这一点已通过原子分子动力学模拟和实验测量得到验证。我们阐明了在 UCl3 型框架结构中观察到的显著离子导电性源于其比紧密堆积的同类结构更扭曲的位点和更大的扩散通道。通过采用非紧密堆积阴离子框架作为高通量计算筛选的关键特征,我们还发现 LiGaCl3 是卤化物 SIC 的理想候选物质。这些发现为探索和设计新型卤化物 SIC 提供了重要启示。
Halide Superionic Conductors with Non-Close-Packed Anion Frameworks
Halide superionic conductors (SICs) are drawing significant research attention for their potential applications in all-solid-state batteries. A key challenge in developing such SICs is to explore and design halide structural frameworks that enable rapid ion movement. In this work, we show that the close-packed anion frameworks shared by traditional halide ionic conductors face intrinsic limitations in fast ion conduction, regardless of structural regulation. Beyond the close-packed anion frameworks, we identify that the non-close-packed anion frameworks have great potential to achieve superionic conductivity. Notably, we unravel that the non-close-packed UCl3-type framework exhibit superionic conductivity for a diverse range of carrier ions, including Li+, Na+, K+, and Ag+, which are validated through both ab initio molecular dynamics simulations and experimental measurements. We elucidate that the remarkable ionic conductivity observed in the UCl3-type framework structure stems from its significantly more distorted site and larger diffusion channel than its close-packed counterparts. By employing the non-close-packed anion framework as the key feature for high-throughput computational screening, we also identify LiGaCl3 as a promising candidate for halide SICs. These discoveries provide crucial insights for the exploration and design of novel halide SICs.