Luo Tongtong, Wang Yang, Elander Brooke, Goldstein Michael, Mu Yu, Wilkes James, Fahrenbruch Mikayla, Lee Justin, Li Tevin, Bao Junwei Lucas, Mohanty Udayan, Wang Dunwei
Department of Chemistry, Boston College, Chestnut Hill, MA, 02467, USA.
Adv Mater. 2024 Feb;36(7):e2306239. doi: 10.1002/adma.202306239. Epub 2023 Dec 3.
Mg-S batteries hold great promise as a potential alternative to Li-based technologies. Their further development hinges on solving a few key challenges, including the lower capacity and poorer cycling performance when compared to Li counterparts. At the heart of the issues is the lack of knowledge on polysulfide chemical behaviors in the Mg-S battery environment. In this Review, a comprehensive overview of the current understanding of polysulfide behaviors in Mg-S batteries is provided. First, a systematic summary of experimental and computational techniques for polysulfide characterization is provided. Next, conversion pathways for Mg polysulfide species within the battery environment are discussed, highlighting the important role of polysulfide solubility in determining reaction kinetics and overall battery performance. The focus then shifts to the negative effects of polysulfide shuttling on Mg-S batteries. The authors outline various strategies for achieving an optimal balance between polysulfide solubility and shuttling, including the use of electrolyte additives, polysulfide-trapping materials, and dual-functional catalysts. Based on the current understanding, the directions for further advancing knowledge of Mg polysulfide chemistry are identified, emphasizing the integration of experiment with computation as a powerful approach to accelerate the development of Mg-S battery technology.
镁硫电池作为锂基技术的潜在替代方案具有巨大潜力。它们的进一步发展取决于解决一些关键挑战,包括与锂基电池相比容量较低和循环性能较差。问题的核心在于对镁硫电池环境中多硫化物化学行为缺乏了解。在本综述中,提供了对当前镁硫电池中多硫化物行为理解的全面概述。首先,对多硫化物表征的实验和计算技术进行了系统总结。接下来,讨论了电池环境中镁多硫化物物种的转化途径,强调了多硫化物溶解度在决定反应动力学和整体电池性能方面的重要作用。然后重点转向多硫化物穿梭对镁硫电池的负面影响。作者概述了在多硫化物溶解度和穿梭之间实现最佳平衡的各种策略,包括使用电解质添加剂、多硫化物捕获材料和双功能催化剂。基于当前的理解,确定了进一步推进镁多硫化物化学知识的方向,强调将实验与计算相结合作为加速镁硫电池技术发展的有力方法。