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Theoretical Design of Lithium Chloride Superionic Conductors for All-Solid-State High-Voltage Lithium-Ion Batteries

机译:全固态高压锂离子电池氯化锂外离子导体的理论设计

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The development of solid electrolytes (SEs) is a promising pathway to improve the energy density and safety of conventional Li ion batteries. Several lithium chloride SEs, Li3MCl6 (M = Y, Er, In, and Sc), have gained popularity due to their high ionic conductivity, wide electrochemical window, and good chemical stability. This study systematically investigated 17 Li3MCl6 SEs to identify novel and promising lithium chloride SEs. Calculation results revealed that 12 Li3MCl6 (M = Bi, Dy, Er, Ho, In, Lu, Sc, Sm, Tb, TI, Tm, and Y) were stable phase with a wide electrochemical stability window and excellent chemical stability against cathode materials and moisture. Li-ion transport properties were examined using bond valence site energy (BVSE) and ab initio molecular dynamics (AIMD) calculation. Li3MCl6 showed the lower migration energy barrier in monoclinic structures, while orthorhombic and trigonal structures exhibited higher energy barriers due to the sluggish diffusion along the two-dimensional path based on the BVSE model. AIMD results confirmed the slower ion migration along the 2D path, exhibiting lower ionic diffusivity and higher activation energy in orthorhombic and trigonal structures. For the further increase of ionic conductivity in monoclinic structures, Li-ion vacancy was formed by the substitution of M(3+ )with Zr4+. Zr-substituted phase (Li2.5M0.5Zr0.5Cl6, M = In, Sc) exhibited up to a fourfold increase in ionic conductivity. This finding suggested that the optimization of Li vacancy in the Li3MCl6 SEs could lead to superionic Li3MCl6 SEs.
机译:固体电解质(SES)的发展是有望的途径,以提高常规锂离子电池的能量密度和安全性。由于其高离子电导率,宽电化学窗口和良好的化学稳定性,几种氯化锂SES,Li3MCl6(M = Y,ER,IN和SC)具有普及。该研究系统地研究了17个Li3MCL6 SES,以识别新颖和有前途的氯化锂SES。计算结果表明,12 Li3MCl6(M = Bi,Dy,ER,HO,IN,Lu,SC,SM,TB,Ti,Tm,Y)是具有宽电化学稳定性窗口的稳定相,以及对阴极材料的优异的化学稳定性和水分。使用键价位点(BVSE)和AB Initio分子动力学(AIMD)计算检查锂离子传输性能。 Li3MCL6显示了单斜斜面结构中的较低迁移能屏障,而沿着基于BVSE模型的二维路径的缓慢扩散,矫正球和三角结构表现出更高的能量屏障。 AIMD结果证实了沿2D路径的较慢的离子迁移,表现出较低的离子扩散性和较高的正交结构中的激活能量。为了进一步增加单斜斜肌结构中的离子电导率,通过用Zr4 +取代M(3+)来形成锂离子空位。 Zr取代的相(Li2.5m0.5zr0.5cl6,m = In,sc)呈现为离子电导率的四倍增加。这一发现表明Li3MCL6 SES中LI空位的优化可能导致超前Li3MCL6 SES。

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