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利用机器学习势解决硫化物基固态电解质中的结构复杂性问题。

Tackling Structural Complexity in LiS-PS Solid-State Electrolytes Using Machine Learning Potentials.

作者信息

Staacke Carsten G, Huss Tabea, Margraf Johannes T, Reuter Karsten, Scheurer Christoph

机构信息

Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, 14195 Berlin, Germany.

Forschungszentrum Jülich GmbH, Institute of Energy and Climate Research, Fundamental Electrochemistry (IEK-9), Wilhelm-Johnen-Straße, 52428 Jülich, Germany.

出版信息

Nanomaterials (Basel). 2022 Aug 26;12(17):2950. doi: 10.3390/nano12172950.

Abstract

The lithium thiophosphate (LPS) material class provides promising candidates for solid-state electrolytes (SSEs) in lithium ion batteries due to high lithium ion conductivities, non-critical elements, and low material cost. LPS materials are characterized by complex thiophosphate microchemistry and structural disorder influencing the material performance. To overcome the length and time scale restrictions of calculations to industrially applicable LPS materials, we develop a near-universal machine-learning interatomic potential for the LPS material class. The trained Gaussian Approximation Potential (GAP) can likewise describe crystal and glassy materials and different P-S connectivities PmSn. We apply the GAP surrogate model to probe lithium ion conductivity and the influence of thiophosphate subunits on the latter. The materials studied are crystals (modifications of Li3PS4 and Li7P3S11), and glasses of the Li2S-(100 - )P2S5 type ( = 67, 70 and 75). The obtained material properties are well aligned with experimental findings and we underscore the role of anion dynamics on lithium ion conductivity in glassy LPS. The GAP surrogate approach allows for a variety of extensions and transferability to other SSEs.

摘要

硫代磷酸锂(LPS)材料类别因其高锂离子电导率、非关键元素和低材料成本,为锂离子电池中的固态电解质(SSE)提供了有前景的候选材料。LPS材料的特点是硫代磷酸微观化学复杂且结构无序,这会影响材料性能。为了克服对工业适用的LPS材料进行计算时的长度和时间尺度限制,我们为LPS材料类别开发了一种近乎通用的机器学习原子间势。经过训练的高斯近似势(GAP)同样可以描述晶体和玻璃态材料以及不同的P-S连接性PmSn。我们应用GAP替代模型来探究锂离子电导率以及硫代磷酸亚基对其的影响。所研究的材料包括晶体(Li3PS4和Li7P3S11的变体)以及Li2S-(100 - )P2S5类型的玻璃( = 67、70和75)。获得的材料性能与实验结果高度吻合,并且我们强调了阴离子动力学在玻璃态LPS中对锂离子电导率的作用。GAP替代方法允许进行各种扩展并可转移到其他SSE。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce7f/9458117/59902f2e79a1/nanomaterials-12-02950-g001.jpg

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