首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Solid-State Electrolytes: Revealing the Mechanisms of Li-Ion Conduction in Tetragonal and Cubic LLZO by First-Principles Calculations
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Solid-State Electrolytes: Revealing the Mechanisms of Li-Ion Conduction in Tetragonal and Cubic LLZO by First-Principles Calculations

机译:固态电解质:通过第一性原理计算揭示四方和立方LLZO中锂离子传导的机理

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摘要

In this study, we applied first-prinriples-based calculations, such as ab-initio molecular dynamics simulation, rnetadynamics, and nudged-elastic band calculations, to successfully identify the mechanisms responsible for the considerable difference in ionic conductivity between the tetragonal and the cubic phases of LLZO (Li7La1Zr2O_(12))—a promising candidate for use as a highly Li-ion conductive solid-state electrolyte in Li-based batteries. Whereas in tetragonal LLZO the motion of Li ions is of fully collective nature or synchronous, we identified an asynchronous mechanism dominated by single-ion jumps and induced collective motion in cubic LLZO. The latter mechanism is possible at considerably lower energetic cost. The calculated energetic barriers that represent the two distinct mechanisms show good agreement with experimental values. Moreover, we were able to map the different mechanisms to the structural features of the particular polymorphs.
机译:在这项研究中,我们应用了基于第一原理的计算,例如从头算分子动力学模拟,核动力学和微动弹性带计算,以成功地确定造成四方和立方离子电导率差异巨大的机理。 LLZO(Li7La1Zr2O_(12))的相—一种有望在锂基电池中用作高锂离子传导性固态电解质的候选材料。在四边形LLZO中,锂离子的运动具有完全的集体性质或同步性,但我们确定了一种异步机制,该机制由单离子跳跃主导,并在立方LLZO中引起了集体运动。后一种机制可以以相当低的能量成本进行。计算出的代表两种不同机理的能量屏障显示出与实验值良好的一致性。此外,我们能够将不同的机制映射到特定多晶型物的结构特征。

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