Lee Yeong A, Jang Kyu Yeon, Yoo Jaeseop, Yim Kanghoon, Jung Wonzee, Jung Kyu-Nam, Yoo Chung-Yul, Cho Younghyun, Lee Jinhong, Ryu Myung Hyun, Shin Hyeyoung, Lee Kyubock, Yoon Hana
Korea Institute of Energy Research (KIER), Daejeon 34129, Republic of Korea.
Graduate School of Energy Science and Technology (GEST), Chungnam National University, Daejeon 34134, Republic of Korea.
Materials (Basel). 2023 May 27;16(11):4016. doi: 10.3390/ma16114016.
The demand for fast-charging lithium-ion batteries (LIBs) with long cycle life is growing rapidly due to the increasing use of electric vehicles (EVs) and energy storage systems (ESSs). Meeting this demand requires the development of advanced anode materials with improved rate capabilities and cycling stability. Graphite is a widely used anode material for LIBs due to its stable cycling performance and high reversibility. However, the sluggish kinetics and lithium plating on the graphite anode during high-rate charging conditions hinder the development of fast-charging LIBs. In this work, we report on a facile hydrothermal method to achieve three-dimensional (3D) flower-like MoS nanosheets grown on the surface of graphite as anode materials with high capacity and high power for LIBs. The composite of artificial graphite decorated with varying amounts of MoS nanosheets, denoted as MoS@AG composites, deliver excellent rate performance and cycling stability. The 20-MoS@AG composite exhibits high reversible cycle stability (~463 mAh g at 200 mA g after 100 cycles), excellent rate capability, and a stable cycle life at the high current density of 1200 mA g over 300 cycles. We demonstrate that the MoS-nanosheets-decorated graphite composites synthesized via a simple method have significant potential for the development of fast-charging LIBs with improved rate capabilities and interfacial kinetics.
由于电动汽车(EV)和储能系统(ESS)的使用日益增加,对具有长循环寿命的快速充电锂离子电池(LIB)的需求正在迅速增长。满足这一需求需要开发具有更高倍率性能和循环稳定性的先进负极材料。石墨因其稳定的循环性能和高可逆性,是LIB中广泛使用的负极材料。然而,在高倍率充电条件下,石墨负极上缓慢的动力学和锂镀层阻碍了快速充电LIB的发展。在这项工作中,我们报道了一种简便的水热法,以在石墨表面生长三维(3D)花状MoS纳米片作为LIB的高容量和高功率负极材料。用不同量的MoS纳米片装饰的人造石墨复合材料,称为MoS@AG复合材料,具有优异的倍率性能和循环稳定性。20-MoS@AG复合材料在100次循环后,在200 mA g下表现出高可逆循环稳定性(~463 mAh g)、优异的倍率性能,并且在1200 mA g的高电流密度下经过300次循环具有稳定的循环寿命。我们证明,通过简单方法合成的MoS纳米片修饰的石墨复合材料在开发具有更高倍率性能和界面动力学的快速充电LIB方面具有巨大潜力。