Li Fei, Mei Shijie, Ye Xing, Yuan Haowei, Li Xiaoqin, Tan Jie, Zhao Xiaoli, Wu Tongwei, Chen Xiehang, Wu Fang, Xiang Yong, Pan Hong, Huang Ming, Xue Zhiyu
School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu, 611731, China.
Frontier Center of Energy Distribution and Integration, Tianfu Jiangxi Lab, Chengdu, 641419, China.
Adv Sci (Weinh). 2024 Sep;11(36):e2404328. doi: 10.1002/advs.202404328. Epub 2024 Jul 25.
Established in 1962, lithium-sulfur (Li-S) batteries boast a longer history than commonly utilized lithium-ion batteries counterparts such as LiCoO (LCO) and LiFePO (LFP) series, yet they have been slow to achieve commercialization. This delay, significantly impacting loading capacity and cycle life, stems from the long-criticized low conductivity of the cathode and its byproducts, alongside challenges related to the shuttle effect, and volume expansion. Strategies to improve the electrochemical performance of Li-S batteries involve improving the conductivity of the sulfur cathode, employing an adamantane framework as the sulfur host, and incorporating catalysts to promote the transformation of lithium polysulfides (LiPSs). 2D MXene and its derived materials can achieve almost all of the above functions due to their numerous active sites, external groups, and ease of synthesis and modification. This review comprehensively summarizes the functionalization advantages of MXene-based materials in Li-S batteries, including high-speed ionic conduction, structural diversity, shuttle effect inhibition, dendrite suppression, and catalytic activity from fundamental principles to practical applications. The classification of usage methods is also discussed. Finally, leveraging the research progress of MXene, the potential and prospects for its novel application in the Li-S field are proposed.
锂硫(Li-S)电池于1962年问世,其历史比常用的锂离子电池同类产品(如LiCoO(LCO)和LiFePO(LFP)系列)更长,但它们实现商业化的速度一直很慢。这种延迟对负载能力和循环寿命产生了重大影响,其原因在于长期以来备受诟病的阴极及其副产物的低导电性,以及与穿梭效应和体积膨胀相关的挑战。提高Li-S电池电化学性能的策略包括提高硫阴极的导电性、采用金刚烷框架作为硫宿主以及加入催化剂以促进多硫化锂(LiPSs)的转化。二维MXene及其衍生材料因其众多的活性位点、外部基团以及易于合成和改性,几乎可以实现上述所有功能。本文综述全面总结了基于MXene的材料在Li-S电池中的功能化优势,包括从基本原理到实际应用的高速离子传导、结构多样性、穿梭效应抑制、枝晶抑制和催化活性。还讨论了使用方法的分类。最后,利用MXene的研究进展,提出了其在Li-S领域新应用的潜力和前景。