Zhang Yuqiang, Xiao Weiqiang, Zhao Yingying, Li Jinhang, Yang Di, Zhu Chunling, Chen Yujin
Key Laboratory of Photonic Materials and Devices Physics for Oceanic Applications, Ministry of Industry and Information Technology of China, College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin, 150001, China.
Key Laboratory of In-Fiber Integrated Optics of Ministry of Education, College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin, 150001, China.
Small. 2024 Nov;20(48):e2406683. doi: 10.1002/smll.202406683. Epub 2024 Aug 27.
Magnesium-lithium-ion hybrid batteries (MLIBs) have gained significant attention since the combination of a dendrite-free and low-cost magnesium anode with lithium-ion storage cathodes. However, the lack of high-performance cathodes has severely hindered their development, limited by the lower operating voltages of electrolytes. Herein, vanadium molybdenum disulfide nanosheets anchoring on flexible carbon cloth (VMS@CC) are constructed as high-performance cathodes for MLIBs, which inherit the electrochemical properties of high-voltage VS and high-capacity MoS, simultaneously. By adjusting the V and Mo atomic ratio, the VMS@CC cathode for MLIBs delivers a record maximum energy density of 275.5 Wh kg with a high working voltage of 1.07 V at 50 mA g. Meanwhile, under the synergistic effects of the conductive carbon cloth matrix, abundant hetero-interfaces and defects, as well as expanded interlayer spacing, the VMS@CC cathode displays superior rate capability and long-term cycling stability. Ex situ analyses demonstrate the VMS nanosheets cathode exhibits a Li/Mg co-insertion/extraction mechanism in MLIBs, following the in situ insertion of organic species in the hybrid electrolyte during the aging process. The fabricated flexible cathode herein provides a new insight into the construction of high-energy density cathodes for MLIBs.
镁锂离子混合电池(MLIBs)自无枝晶且低成本的镁负极与锂离子存储正极相结合以来,已受到广泛关注。然而,由于电解质的工作电压较低,缺乏高性能正极严重阻碍了它们的发展。在此,锚定在柔性碳布上的二硫化钒钼纳米片(VMS@CC)被构建为用于MLIBs的高性能正极,其同时继承了高压VS和高容量MoS的电化学性能。通过调整V和Mo的原子比,用于MLIBs的VMS@CC正极在50 mA g下以1.07 V的高工作电压提供了创纪录的最大能量密度275.5 Wh kg。同时,在导电碳布基体、丰富的异质界面和缺陷以及扩大的层间距的协同作用下,VMS@CC正极表现出优异的倍率性能和长期循环稳定性。非原位分析表明,VMS纳米片正极在MLIBs中表现出Li/Mg共嵌入/脱出机制,这是在老化过程中混合电解质中原位插入有机物种之后发生的。本文制备的柔性正极为构建用于MLIBs的高能量密度正极提供了新的思路。