Huang Xiang Long, Zhou Chaofu, He Weidong, Sun Shuhui, Chueh Yu-Lun, Wang Zhiming M, Liu Hua Kun, Dou Shi Xue
Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu 610054, P. R. China.
School of Physics, University of Electronic Science and Technology of China, Chengdu 610054, P. R. China.
ACS Nano. 2021 Apr 27;15(4):5876-5903. doi: 10.1021/acsnano.0c10078. Epub 2021 Mar 31.
Sodium-selenium (Na-Se) batteries have aroused enormous attention due to the large abundance of the element sodium as well as the high electronic conductivity and volumetric capacity of selenium. In this battery system, some primary advances in electrode materials have been achieved, mainly involving the design of Se-based cathode materials. In this Review, the electrochemical mechanism is discussed, thus revealing the main challenges in Na-Se batteries. Then, the advances in the design of Se-based cathode materials for Na-ion storage are systemically summarized, classified, and discussed, including Se/carbon composite, Se/polar material/carbon composites, and hybrid SeS alloys. Some potential strategies enabling the improvement of crucial challenges and enhancement of electrochemical performance are also proposed to provide guidelines for the enhancements of Na-ion storage. An outlook for future valuable research directions is proposed to understand more deeply the electrochemical mechanism of Na-Se batteries and promote their further developments in full cell performance and commercialization.
钠硒(Na-Se)电池因其元素钠储量丰富以及硒具有高电子导电性和体积容量而备受关注。在该电池体系中,电极材料已取得了一些初步进展,主要涉及基于硒的阴极材料设计。在本综述中,讨论了电化学机理,从而揭示了钠硒电池中的主要挑战。然后,系统地总结、分类并讨论了用于钠离子存储的基于硒的阴极材料设计进展,包括硒/碳复合材料、硒/极性材料/碳复合材料以及混合硒硫化物合金。还提出了一些能够改善关键挑战并提高电化学性能的潜在策略,为增强钠离子存储提供指导。提出了未来有价值的研究方向展望,以更深入地理解钠硒电池的电化学机理,并推动其在全电池性能和商业化方面的进一步发展。