Lu Yan, Wang Cong, Liu Qiang, Li Xiaoyan, Zhao Xinyu, Guo Zaiping
Center of Nanoelectronics, School of Microelectronics, Shandong University, Jinan, 250100, P. R. China.
Laboratoire de Physique des Solides, Bâtiment 510, Université Paris-Saclay, Orsay, 91405, France.
Small Methods. 2021 May;5(5):e2001303. doi: 10.1002/smtd.202001303. Epub 2021 Apr 14.
Rechargeable magnesium-sulfur (Mg-S) batteries are emerging as a promising candidate for next-generation energy storage technologies owing to their prominent advantages in terms of high volumetric energy density, low cost, and enhanced safety. However, their practical implementation is facing great challenges in finding electrolytes that can fulfill a multitude of rigorous requirements along with efficient sulfur cathodes and magnesium anodes. This review highlights electrolyte design for reliable Mg-S batteries in terms of efficient Mg-based salt construction (cation/anion design of organomagnesium salt-based electrolytes, optimization of all inorganic salt-based electrolytes and choosing of simple salt-based electrolytes), suitable solvent selection, and strategies for confronting corrosivity of Mg electrolytes. Before the comprehensive overview of the research status of Mg-based electrolytes, the understanding of Mg-S electrochemistry and views on the recent progress and potential strategies for high-performance S-based cathode and Mg anode are also provided for a holistic insight into Mg-S systems. At the end, the perspectives on the possible research directions for constructing high performance practical Mg-S batteries are also shared.
可充电镁硫(Mg-S)电池因其在高体积能量密度、低成本和更高安全性方面的突出优势,正成为下一代储能技术的有力候选者。然而,要找到能满足众多严格要求的电解质以及高效的硫阴极和镁阳极,其实际应用面临着巨大挑战。本文综述了可靠的镁硫电池的电解质设计,包括高效镁基盐的构建(有机镁盐基电解质的阳离子/阴离子设计、全无机盐基电解质的优化以及简单盐基电解质的选择)、合适溶剂的选择以及应对镁电解质腐蚀性的策略。在全面概述镁基电解质的研究现状之前,还介绍了对镁硫电化学的理解以及对高性能硫基阴极和镁阳极的最新进展和潜在策略的看法,以便对镁硫体系有全面的了解。最后,还分享了关于构建高性能实用镁硫电池可能的研究方向的观点。