Deng Zhikang, Chen Shiming, Yang Kai, Song Yongli, Xue Shida, Yao Xiangming, Yang Luyi, Pan Feng
School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, 518055, China.
Advanced Technology Institute, Department of Electrical and Electronic Engineering, University of Surrey, Guildford, Surrey, GU2 7XH, UK.
Adv Mater. 2024 Sep;36(38):e2407923. doi: 10.1002/adma.202407923. Epub 2024 Jul 31.
Solid-state lithium-ion batteries (SSLIBs) have been considered as the priority candidate for next-generation energy storage system, due to their advantages in safety and energy density compare with conventional liquid electrolyte systems. However, the introduction of numerous solid-solid interfaces results in a series of issues, hindering the further development of SSLIBs. Therefore, a thorough understanding on the interfacial issues is essential to promote the practical applications for SSLIBs. In this review, the interface issues are discussed from the perspective of transportation mechanism of electrons and lithium ions, including internal interfaces within cathode/anode composites and solid electrolytes (SEs), as well as the apparent electrode/SEs interfaces. The corresponding interface modification strategies, such as passivation layer design, conductive binders, and thermal sintering methods, are comprehensively summarized. Through establishing the correlation between carrier transport network and corresponding battery electrochemical performance, the design principles for achieving a selective carrier transport network are systematically elucidated. Additionally, the future challenges are speculated and research directions in tailoring interfacial structure for SSLIBs. By providing the insightful review and outlook on interfacial charge transfer, the industrialization of SSLIBs are aimed to promoted.
固态锂离子电池(SSLIBs)因其在安全性和能量密度方面优于传统液体电解质系统,而被视为下一代储能系统的优先候选者。然而,大量固-固界面的引入导致了一系列问题,阻碍了固态锂离子电池的进一步发展。因此,深入了解界面问题对于推动固态锂离子电池的实际应用至关重要。在这篇综述中,从电子和锂离子传输机制的角度讨论了界面问题,包括阴极/阳极复合材料和固体电解质(SEs)内部的界面,以及明显的电极/固体电解质界面。全面总结了相应的界面改性策略,如钝化层设计、导电粘合剂和热烧结方法。通过建立载流子传输网络与相应电池电化学性能之间的相关性,系统地阐明了实现选择性载流子传输网络的设计原则。此外,还推测了未来的挑战以及为固态锂离子电池定制界面结构的研究方向。通过对界面电荷转移提供有见地的综述和展望,旨在推动固态锂离子电池的产业化。