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First-Principles Design of Highly Functional Sulfide Electrolyte of Li10-xSnP2S12-xClx for All Solid-State Li-Ion Battery Applications

机译:所有固态锂离子电池应用的LI10-XSNP2S12-XCLX高效硫化物电解质的第一原理设计

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Using first-principles density functional theory calculations and ab initio molecular dynamic simulations, we propose Li10-xSnP2S12-xClx as a highly functional solid electrolyte for a Li ion battery. The underlying mechanisms of excellent Li ion "conductivity and electrochemical stability are 2-fold: (i) complete replacement of expensive Ge4+ with relatively cheaper Sn4+ species and (ii) partial substitution of Cl- for S2- to form body-centered cubic anionic framework. The rationally controlled doping levels of the halide Cl atoms play a vital role to enlarge Li ion diffusion channel sizes. The unique feature of the electronic structure in Li10-xSnP2S12-xClx ensures its superior electrochemical durability in comparison to the conventional LGPS counterpart. We propose a design principle to crank up the stability even more, as high as 8 V, via forming passivating Li-Cl layers at the Li-metal anode surface. We propose Li10-xSnP2S12-xClx as a promising electrolyte material to facilitate a wide commercialization of all solid-state Li ion batteries.
机译:使用第一原理密度函数理论计算和AB Initio分子动态模拟,我们将Li10-Xsnp2S12-XCLX提出为Li离子电池的高功能固体电解质。优异的Li离子“电导率和电化学稳定性的潜在机制是2倍:(i)用相对更便宜的Sn4 +物种和(ii)用于S2的偏替(ii)用于形成身体中心的立方阴离子框架的昂贵的GE4 + 。卤化物Cl原子的合理控制掺杂水平起到扩大Li离子扩散通道尺寸的重要作用。LI10-XSNP2S12-XCLX中电子结构的独特特征确保其与传统LGPS对应相比其优异的电化学耐久性。我们提出设计原理,以使稳定性更高,高达8V,通过在Li金属阳极表面形成钝化的Li-Cl层。我们将Li10-XSNP2S12-XCLX提出为有希望的电解质材料,以方便广泛的商业化所有固态锂离子电池。

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