Jing Pengcheng, Stevenson Siobhan, Lu Huimin, Ren Peng, Abrahams Isaac, Gregory Duncan H
WestCHEM, School of Chemistry, Joseph Black Building, University of Glasgow, Glasgow G12 8QQ, U.K.
School of Material Science and Engineering, Beihang University, Beijing 100083, China.
ACS Appl Mater Interfaces. 2023 Nov 8;15(44):51036-51049. doi: 10.1021/acsami.3c10287. Epub 2023 Oct 24.
If magnesium-ion batteries (MIBs) are to be seriously considered for next-generation energy storage, then a number of major obstacles need to be overcome. The lack of reversible cathode materials with sufficient capacity and cycle life is one of these challenges. Here, we report a new MIB cathode constructed of vertically stacked vanadium molybdenum sulfide (VMS) nanosheets toward addressing this challenge. The integration of vanadium within molybdenum sulfide nanostructures acts so as to improve the total conductivity, enhancing charge transfer, and to produce abundant lattice defects, improving both the accommodation and transport of Mg. Additionally, electrolyte additive-induced interlayer expansion provides a means to admit Mg cations into the electrode structure and thus enhance their diffusion. The VMS nanosheets are capable of exhibiting capacities of 211.3 and 128.2 mA h g at current densities of 100 and 1000 mA g, respectively. The VMS nanosheets also demonstrate long-term cycling stability, retaining 82.7% of the maximum capacity after 500 cycles at a current density of 1000 mA h g. These results suggest that VMS nanosheets could be promising candidates for high-performance cathodes in MIBs.
如果要将镁离子电池(MIBs)认真考虑用于下一代储能,那么需要克服一些主要障碍。缺乏具有足够容量和循环寿命的可逆阴极材料就是这些挑战之一。在此,我们报道了一种由垂直堆叠的钒钼硫化物(VMS)纳米片构建的新型MIB阴极,以应对这一挑战。钒在硫化钼纳米结构中的整合起到了提高总电导率、增强电荷转移的作用,并产生大量晶格缺陷,改善了镁的容纳和传输。此外,电解质添加剂诱导的层间膨胀提供了一种使镁阳离子进入电极结构并从而增强其扩散的方法。VMS纳米片在电流密度为100和1000 mA g时分别能够表现出211.3和128.2 mA h g的容量。VMS纳米片还展示了长期循环稳定性,在电流密度为1000 mA h g下500次循环后保留了最大容量的82.7%。这些结果表明,VMS纳米片可能是MIBs中高性能阴极的有前途的候选材料。