Wang Shasha, Guo Jiaqi, Huo Jiaqi, Wen Lu, Tang Jingyao, Cao Bo, Cheng Yan
Inner Mongolia Engineering Center for Regional Resource Utilization and Eco-Environmental Protection, College of Chemistry and Environment Science, Inner Mongolia Normal University Hohhot 010022 China
Institute of Environmental and Health, Inner Mongolia Normal University Hohhot 010022 China.
Nanoscale Adv. 2025 May 6;7(14):4490-4498. doi: 10.1039/d5na00135h. eCollection 2025 Jul 10.
Mo-based hybrids, including molybdenum oxide, molybdenum sulfide, and molybdenum carbide, have been extensively investigated as anode materials for lithium-ion batteries (LIBs) due to their high theoretical electrochemical capacities compared to conventional carbon materials. However, molybdenum phosphide, which shows great promise as an anode material for LIBs, has been scarcely investigated to date. In this paper, two-dimensional (2D) mesoporous ultrasmall MoS-MoP heterostructured nanosheets/graphene hybrids (meso-MoS-MoP/G) were synthesized using a "nanocasting" method followed by a phosphidation treatment. The as-prepared 2D meso-MoS-MoP/G hybrid featured unique mesoporous structures with MoS-MoP heterojunctions vertically growing on the graphene nanosheet. Benefiting from its characteristic nanosheet morphology, abundant mesopores, high electrical conductivity, and the unique MoS-MoP heterostructure, the 2D meso-MoS-MoP/G hybrid demonstrated exceptional lithium storage performance as an anode material for LIBs in terms of specific capacity, cycling stability, and long cycle life. The specific capacity of 2D meso-MoS-MoP/G hybrid remained above 910.3 mA h g at a current density of 100 mA g after 50 cycles. Even at a high current density of 1 A g, the 2D meso-MoS-MoP/G hybrid still delivered a remarkable discharge capacity of 863.9 mA h g with good cycling stability. This study provides an efficient approach to construct heterostructured nanosheets on 2D materials for high-performance LIBs.
包括氧化钼、硫化钼和碳化钼在内的钼基复合材料,由于与传统碳材料相比具有较高的理论电化学容量,已被广泛研究用作锂离子电池(LIB)的负极材料。然而,作为LIB负极材料具有很大潜力的磷化钼,迄今为止却鲜有研究。在本文中,采用“纳米铸造”法并经过磷化处理,合成了二维(2D)介孔超小MoS-MoP异质结构纳米片/石墨烯复合材料(介孔-MoS-MoP/G)。所制备的二维介孔-MoS-MoP/G复合材料具有独特的介孔结构,MoS-MoP异质结垂直生长在石墨烯纳米片上。受益于其独特的纳米片形态、丰富的介孔、高电导率以及独特的MoS-MoP异质结构,二维介孔-MoS-MoP/G复合材料作为LIB的负极材料,在比容量、循环稳定性和长循环寿命方面表现出卓越的锂存储性能。二维介孔-MoS-MoP/G复合材料在100 mA g的电流密度下循环50次后,比容量仍保持在910.3 mA h g以上。即使在1 A g的高电流密度下,二维介孔-MoS-MoP/G复合材料仍具有出色的放电容量863.9 mA h g,且循环稳定性良好。本研究为在二维材料上构建用于高性能LIB的异质结构纳米片提供了一种有效方法。