Institute for Frontier Materials, Deakin University, Geelong, Victoria3216, Australia.
ARC Centre of Excellence in Exciton Science, School of Science, RMIT University, Melbourne, VIC3001, Australia.
ACS Appl Mater Interfaces. 2022 Dec 21;14(50):55471-55479. doi: 10.1021/acsami.2c12192. Epub 2022 Dec 6.
Understanding the degradation mechanisms in solid-state lithium-ion batteries at interfaces is fundamental for improving battery performance and for designing recycling methodologies for batteries. A key source of battery degradation is the presence of the space charge layer at the solid-state electrolyte-electrode interface and the impact that this layer has on the thermodynamics of the electrolyte structure. Currently, LiGePS in its pristine form has one of the highest lithium conductivities and has been used as a template for designing even higher conductivity derived structures. However, being an ionic material with mostly linear diffusion, it is prone to path-blocker defects, which we show here to be especially prevalent in the space charge layer. We analyze the thermodynamic properties of a number of path-blocker defects using density functional theory and their potential crystal decomposition and find that the presence of an electrostatic potential in the space charge layer elevates the likelihood of existence of these defects, which otherwise would not be likely to form in the bulk of the electrolyte away from electrodes. We use molecular dynamics to assess the impact of these defects on the diffusivity of the crystal and find that they all reduce the lithium diffusivity. While our work focuses on LiGePS, it is relevant to any solid-state electrolyte with mainly linear diffusion.
了解固态锂离子电池界面的降解机制对于提高电池性能和设计电池回收方法至关重要。电池降解的一个主要来源是固态电解质-电极界面处的空间电荷层的存在,以及该层对电解质结构热力学的影响。目前,原始形式的 LiGePS 具有最高的锂离子电导率之一,并被用作设计甚至更高电导率衍生结构的模板。然而,作为一种主要具有线性扩散的离子材料,它容易受到路径阻塞缺陷的影响,我们在这里表明,这些缺陷在空间电荷层中尤为普遍。我们使用密度泛函理论分析了一些路径阻塞缺陷的热力学性质及其潜在的晶体分解,并发现空间电荷层中的静电势会增加这些缺陷存在的可能性,否则这些缺陷在远离电极的电解质体相内不太可能形成。我们使用分子动力学来评估这些缺陷对晶体扩散性的影响,发现它们都会降低锂离子扩散率。虽然我们的工作重点是 LiGePS,但它与主要具有线性扩散的任何固态电解质都有关。