锂非化学计量对四方石榴石型Li7La3Zr2O12离子扩散的影响

IF 7 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Zihan Yan,  and , Yizhou Zhu*, 
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引用次数: 0

摘要

了解固态电解质中离子在原子尺度上的输运机制对全固态电池的发展至关重要。Li7La3Zr2O12 (LLZO)是一种很有前途的氧化物固体电解质材料,其相变行为和离子输运机制引起了人们的广泛关注。以往的研究主要集中在离子在立方相(本征高温相或掺杂变体)中的输运。相比之下,LLZO的四方相虽然与立方相关系密切,但由于其相对较低的离子电导率和较高的计算成本,受到的关注较少。最近的一些计算研究表明,电导率和活化能在计算值和实验值之间存在显著差异。因此,LLZO四方相中离子输运机制的不明确对于理解和设计氧化物固体电解质至关重要。在这项研究中,我们采用最先进的基于机器学习的神经进化电位分子动力学模拟来研究锂非化学计量对LLZO离子电导率和相稳定性的影响。我们证明了化学计量的微小偏差,特别是锂缺乏,显著降低了Li+在四方LLZO中的扩散活化能,从1.227 eV降低到0.425 eV,使室温离子电导率提高了10个数量级。高温合成过程中常见的轻微锂非化学计量对四方相中的离子输运有显著影响。我们的研究结果强调了锂非化学计量学和缺陷化学在提高LLZO性能方面的关键作用,并为通过缺陷工程合理设计高性能固体电解质提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Impact of Lithium Nonstoichiometry on Ionic Diffusion in Tetragonal Garnet-Type Li7La3Zr2O12

Impact of Lithium Nonstoichiometry on Ionic Diffusion in Tetragonal Garnet-Type Li7La3Zr2O12

Understanding ion transport mechanisms on the atomistic scale in solid-state electrolytes is crucial for the development of all-solid-state batteries. Li7La3Zr2O12 (LLZO) is a promising oxide solid electrolyte material, whose phase transition behavior and ion transport mechanisms have attracted significant research attention. Previous studies have primarily focused on ion transport in the cubic phase (intrinsic high-temperature phase or doped variants). In contrast, the tetragonal phase of LLZO, despite its close relationship with the cubic phase, has received less attention due to its relatively low ionic conductivity and high computational cost. A few recent computational studies have shown significant discrepancies in conductivity and activation energy between calculated and experimental values. Therefore, the unclear ion transport mechanisms in the tetragonal phase of LLZO are critical to understanding and designing oxide solid electrolytes. In this study, we employ state-of-the-art machine-learning-based neuroevolution potential molecular dynamics simulations to investigate the effects of lithium nonstoichiometry on the ionic conductivity and phase stability of LLZO. We demonstrate that small deviations from stoichiometry, particularly lithium deficiency, dramatically reduce the activation energy for Li+ diffusion in tetragonal LLZO from 1.227 to 0.425 eV, increasing room-temperature ionic conductivity by 10 orders of magnitude. The slight lithium nonstoichiometry, which commonly occurs during high-temperature synthesis, has a significant effect on ion transport in the tetragonal phase. Our findings highlight the crucial role of lithium nonstoichiometry and defect chemistry in enhancing LLZO performance and provide insights for the rational design of high-performance solid electrolytes through defect engineering.

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来源期刊
Chemistry of Materials
Chemistry of Materials 工程技术-材料科学:综合
CiteScore
14.10
自引率
5.80%
发文量
929
审稿时长
1.5 months
期刊介绍: The journal Chemistry of Materials focuses on publishing original research at the intersection of materials science and chemistry. The studies published in the journal involve chemistry as a prominent component and explore topics such as the design, synthesis, characterization, processing, understanding, and application of functional or potentially functional materials. The journal covers various areas of interest, including inorganic and organic solid-state chemistry, nanomaterials, biomaterials, thin films and polymers, and composite/hybrid materials. The journal particularly seeks papers that highlight the creation or development of innovative materials with novel optical, electrical, magnetic, catalytic, or mechanical properties. It is essential that manuscripts on these topics have a primary focus on the chemistry of materials and represent a significant advancement compared to prior research. Before external reviews are sought, submitted manuscripts undergo a review process by a minimum of two editors to ensure their appropriateness for the journal and the presence of sufficient evidence of a significant advance that will be of broad interest to the materials chemistry community.
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