Zhang Mengjie, Zhang Xu, Liu Sen, Hou Wenshuo, Lu Yang, Hou Linrui, Luo Yongsong, Liu Yang, Yuan Changzhou
School of Materials Science & Engineering, University of Jinan, Jinan, 250022, PR China.
Henan Joint International Research Laboratory of New Energy Storage Technology, Key Laboratory of Microelectronics and Energy of Henan Province, School of Physics and Electronic Engineering, Xinyang Normal University, Xinyang, 464000, P. R. China.
ChemSusChem. 2024 Nov 11;17(21):e202400538. doi: 10.1002/cssc.202400538. Epub 2024 Jul 2.
Lithium-sulfur batteries (LSBs) have recently gained extensive attention due to their high energy density, low cost, and environmental friendliness. However, serious shuttle effect and uncontrolled growth of lithium dendrites restrict them from further commercial applications. As "the third electrode", functional separators are of equal significance as both anodes and cathodes in LSBs. The challenges mentioned above are effectively addressed with rational design and optimization in separators, thereby enhancing their reversible capacities and cycle stability. The review discusses the status/operation mechanism of functional separators, then primarily focuses on recent research progress in versatile separators with purposeful modifications for LSBs, and summarizes the methods and characteristics of separator modification, including heterojunction engineering, single atoms, quantum dots, and defect engineering. From the perspective of the anodes, distinct methods to inhibit the growth of lithium dendrites by modifying the separator are discussed. Modifying the separators with flame retardant materials or choosing a solid electrolyte is expected to improve the safety of LSBs. Besides, in-situ techniques and theoretical simulation calculations are proposed to advance LSBs. Finally, future challenges and prospects of separator modifications for next-generation LSBs are highlighted. We believe that the review will be enormously essential to the practical development of advanced LSBs.
锂硫电池(LSBs)因其高能量密度、低成本和环境友好性,近年来受到了广泛关注。然而,严重的穿梭效应和锂枝晶的无控制生长限制了它们的进一步商业应用。作为“第三电极”,功能隔膜在锂硫电池中与阳极和阴极具有同等重要的意义。通过对隔膜进行合理设计和优化,可以有效解决上述挑战,从而提高其可逆容量和循环稳定性。本文综述了功能隔膜的现状/运行机制,然后主要聚焦于对锂硫电池进行有针对性改性的多功能隔膜的最新研究进展,并总结了隔膜改性的方法和特点,包括异质结工程、单原子、量子点和缺陷工程。从阳极的角度,讨论了通过改性隔膜抑制锂枝晶生长的不同方法。用阻燃材料改性隔膜或选择固体电解质有望提高锂硫电池的安全性。此外,还提出了原位技术和理论模拟计算以推动锂硫电池的发展。最后,强调了下一代锂硫电池隔膜改性的未来挑战和前景。我们相信,本文综述对先进锂硫电池的实际发展将极为重要。