二元阴阳离子共掺杂可提高全固态锂电池的硫化物固态电解质性能

Cheng Li, Yuqi Wu, Zhongwei Lv, Jinxue Peng, Jun Liu, Xuefan Zheng, Yongmin Wu, Weiping Tang, Z. Gong, Yong Yang
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引用次数: 0

摘要

硫化物固体电解质因其固有的优势,如高离子电导率和良好的机械性能,被视为全固态锂电池(ASSLBs)的关键成分。然而,与电化学稳定性和界面兼容性相关的持续挑战仍然是其实际应用中的重大障碍。为了解决这些问题,我们提出了一种阴阳离子共掺杂策略,通过化学键和结构修饰来优化 Li7P3S11(LPS)。我们系统地研究了共掺杂对掺杂 SiO2-、GeO2- 和 SnO2 的硫化物电解质的结构和电化学特性的影响。研究发现,阳离子优先取代了 LPS 基质中 P2S74- 单元的 P5+,从而扩大了 Li+ 的扩散途径,并引入了锂缺陷以促进离子传导。同时,氧离子部分取代了硫离子,从而提高了硫化物电解质的电化学稳定性和界面性能。加入氧化物后产生的协同效应具有多种优势,包括卓越的离子传导性、更强的界面稳定性以及有效抑制锂枝晶的形成。因此,掺氧化物的硫化物固体电解质在 ASSLB 中的应用具有良好的电化学性能。与原始 LPS 相比,使用掺杂电解质的电池具有更高的初始库仑效率、卓越的速率能力和循环稳定性。总之,这项研究凸显了掺氧化物硫化物固体电解质在开发先进 ASSLB 方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Binary anion and cation co-doping enhance sulfide solid electrolyte performance for all-solid-state lithium batteries
Sulfide solid electrolytes are regarded as a pivotal component for all-solid-state lithium batteries (ASSLBs) due to their inherent advantages, such as high ionic conductivity and favorable mechanical properties. However, persistent challenges related to electrochemical stability and interfacial compatibility have remained significant hurdles in their practical application. To address these issues, we propose an anion-cation co-doping strategy for the optimization of Li7P3S11 (LPS) through chemical bonding and structural modifications. The co‐doping effects on the structural and electrochemical properties of SiO2-, GeO2-, and SnO2-doped sulfide electrolytes were systematically investigated. Cations are found to preferentially substitute the P5+ of the P2S74- unit within the LPS matrix, thereby expanding the Li+ diffusion pathways and introducing lithium defects to facilitate ion conduction. Concurrently, oxygen ions partially substitute sulfur ions, leading to improved electrochemical stability and enhanced interfacial performance of the sulfide electrolyte. The synergistic effects resulting from the incorporation of oxides yield several advantages, including superior ionic conductivity, enhanced interfacial stability, and effective suppression of lithium dendrite formation. Consequently, the application of oxide-doped sulfide solid electrolytes in ASSLBs yields promising electrochemical performances. The cells with doped-electrolytes exhibit higher initial coulombic efficiency, superior rate capability, and cycling stability when compared to the pristine LPS. Overall, this research highlights the potential of oxide-doped sulfide solid electrolytes in the development of advanced ASSLBs.
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