Yue Xiyan, Wang Jiajia, Xie Zhengkun, He Yang, Liu Zhao, Liu Changlin, Hao Xiaogang, Abudula Abuliti, Guan Guoqing
Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan.
College of Chemistry, Zhengzhou University, Kexue Avenue 100, Zhengzhou, Henan 450001, China.
ACS Appl Mater Interfaces. 2021 Jun 9;13(22):26046-26054. doi: 10.1021/acsami.1c05096. Epub 2021 May 24.
Sodium-ion batteries (SIBs), being an attractive candidate of lithium-ion batteries, have attracted widespread attention as a result of sufficient sodium resource with low price and their comparable suitability in the field of energy storage. However, one of the main challenges for their wide-scale application is to develop suitable anode materials with excellent electrochemical performance. Herein, a novel orderly layered VMoS (OL-VMS) anode material was synthesized through a facile hydrothermal self-assembly approach followed by a heating procedure. As the anode material of the SIBs, the unique structure of OL-VMS not only facilitated the rapid migration of sodium ions between the stacked layers but also provided a stable framework for the volume change in the process of intercalation/deintercalation. In addition, vanadium mediating in the framework caused more defects to produce abundant storage sites for Na. As such, the obtained OL-VMS-based anode exhibited high reversible capacities of 602.9 mAh g at 0.2 mA g and 534 mAh g even after 190-cycle operation at 2 A g. Furthermore, the OL-VMS-based anode delivered an outstanding specific capacity of 626.4 mAh g after 100-cycle testing at 2 A g in a voltage range from 0.01 to 3 V. In particular, even in the absence of conductive carbon, it still showed an excellent specific capacity of 260 mAh g at 1 A g after 130 cycles in a 0.3-3 V voltage range, which should contribute to the cost reduction and energy density increase.
钠离子电池(SIBs)作为锂离子电池的一个有吸引力的候选者,由于钠资源丰富、价格低廉且在储能领域具有相当的适用性而受到广泛关注。然而,其大规模应用的主要挑战之一是开发具有优异电化学性能的合适负极材料。在此,通过简便的水热自组装方法并随后进行加热程序,合成了一种新型有序层状VMoS(OL-VMS)负极材料。作为SIBs的负极材料,OL-VMS的独特结构不仅促进了钠离子在堆叠层之间的快速迁移,还为嵌入/脱嵌过程中的体积变化提供了稳定的框架。此外,框架中的钒导致更多缺陷产生丰富的钠存储位点。因此,所制备的基于OL-VMS的负极在0.2 mA g时表现出602.9 mAh g的高可逆容量,即使在2 A g下进行190次循环操作后仍有534 mAh g。此外,基于OL-VMS的负极在2 A g下于0.01至3 V的电压范围内进行100次循环测试后,具有626.4 mAh g的出色比容量。特别是,即使在没有导电碳的情况下,它在0.3 - 3 V电压范围内于1 A g下进行130次循环后仍显示出260 mAh g的优异比容量,这有助于降低成本和提高能量密度。