Regulacio Michelle D, Nguyen Dan-Thien, Horia Raymond, Seh Zhi Wei
Institute of Chemistry, University of the Philippines Diliman, Quezon City, 1101, Philippines.
Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis, Singapore, 138634, Singapore.
Small. 2021 Jun;17(25):e2007683. doi: 10.1002/smll.202007683. Epub 2021 Apr 24.
Rechargeable magnesium batteries (RMBs) are regarded as promising candidates for beyond-lithium-ion batteries owing to their high energy density. Moreover, as Mg metal is earth-abundant and has low propensity for dendritic growth, RMBs have the advantages of being more affordable and safer than the currently used lithium-ion batteries. However, the commercial viability of RMBs has been negatively impacted by slow diffusion kinetics in most cathode materials due to the high charge density and strongly polarizing nature of the Mg ion. Nanostructuring of potential cathode materials such as metal chalcogenides offers an effective means of addressing these challenges by providing larger surface area and shorter migration routes. In this article, a review of recent research on the design of metal chalcogenide nanostructures for RMBs' cathode materials is provided. The different types and structures of metal chalcogenide cathodes are discussed, and the synthetic strategies through which nanostructuring of these materials can be achieved are described. An organized summary of their electrochemical performance is also presented, along with an analysis of the current challenges and future directions. Although particular focus is placed on RMBs, many of the nanostructuring concepts that are discussed here can be carried forward to other next-generation energy storage systems.
可充电镁电池(RMBs)因其高能量密度而被视为锂离子电池的有前途的替代品。此外,由于镁金属在地壳中储量丰富且枝晶生长倾向低,RMBs具有比目前使用的锂离子电池更经济实惠和更安全的优势。然而,由于镁离子的高电荷密度和强极化性质,大多数阴极材料中的缓慢扩散动力学对RMBs的商业可行性产生了负面影响。对潜在阴极材料(如金属硫族化物)进行纳米结构化,通过提供更大的表面积和更短的迁移路径,为应对这些挑战提供了一种有效手段。本文对用于RMBs阴极材料的金属硫族化物纳米结构设计的最新研究进行了综述。讨论了金属硫族化物阴极的不同类型和结构,并描述了实现这些材料纳米结构化的合成策略。还对它们的电化学性能进行了有条理的总结,并分析了当前的挑战和未来的方向。尽管特别关注RMBs,但这里讨论的许多纳米结构化概念可以应用于其他下一代储能系统。