Yuan Fei, Li Zhaojin, Zhang Di, Wang Qiujun, Wang Huan, Sun Huilan, Yu Qiyao, Wang Wei, Wang Bo
Hebei Key Laboratory of Flexible Functional Materials, School of Materials Science and Engineering, Hebei University of Science and Technology, Shijiazhuang, 050000, China.
State Key Laboratory of Explosion Science and Technology, School of Mechatronical Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Adv Sci (Weinh). 2022 Jul;9(20):e2200683. doi: 10.1002/advs.202200683. Epub 2022 May 9.
Potassium-ion batteries (PIBs) exhibit a considerable application prospect for energy storage systems due to their low cost, high operating voltage, and superior ionic conductivity. As a vital configuration in PIBs, the two-phase interface, which refers to K-ion diffusion from the electrolyte to the electrode surface (solid-liquid interface) and K-ion migration between different particles (solid-solid interface), deeply determines the diffusion/reaction kinetics and structural stability, thus significantly affecting the rate performance and cyclability. However, researches on two-phase interface are still in its infancy and need further attentions. This review first starts from the fundamental understanding of solid-liquid and solid-solid interfaces to in-depth analyzing the effect mechanism of different improvement strategies on them, such as optimization of electrolyte and binders, heterostructure design, modulation of interlayer spacing, etc. Afterward, the research progress of these improvement strategies is summarized comprehensively. Finally, the major challenges are proposed, and the corresponding solving strategies are presented. This review is expected to give an insight into the importance of two-phase interface on diffusion/reaction kinetics, and provides a guidance for developing other advanced anodes in PIBs.
钾离子电池(PIBs)因其低成本、高工作电压和优异的离子导电性,在储能系统中展现出可观的应用前景。作为钾离子电池的一个关键结构,两相界面,即钾离子从电解质扩散到电极表面(固液界面)以及钾离子在不同颗粒间迁移(固固界面),深刻地决定了扩散/反应动力学和结构稳定性,从而显著影响倍率性能和循环稳定性。然而,关于两相界面的研究仍处于起步阶段,需要进一步关注。本综述首先从对固液和固固界面的基本理解出发,深入分析不同改进策略对它们的作用机制,如电解质和粘结剂的优化、异质结构设计、层间距调控等。随后,全面总结这些改进策略的研究进展。最后,提出主要挑战,并给出相应的解决策略。本综述有望深入洞察两相界面在扩散/反应动力学方面的重要性,并为开发钾离子电池中的其他先进负极提供指导。