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Hybridization and pore engineering for achieving high-performance lithium storage of carbide as anode material

机译:杂化和孔工程,以实现碳化物作为阳极材料的高性能锂存储

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摘要

Developing new anode materials to meet the high-energy demands of the next generation of rechargeable lithium-ion batteries (LIBs) is still a challenging work. In this work, hierarchically porous Mo2C-C (HP-Mo2C-C) hybrid has been designed and synthesized by a freeze-drying-assisted route. The resultant HP-MO2C-C hybrid has a surface area as high as 200.6 m(2) g(-1). When evaluated as an anode material for LIBs, the HP-Mo2C-C hybrid displays excellent lithium storage performance in terms of specific capacity, cycling stability and rate capability. The pore engineering and hybridization with carbon are believed to be responsible for the significantly improved electrochemical performance. The novel interconnected pore structure allows for easy diffusion of the electrolyte and at the same time can enhance the HP-MO2C-C/electrolyte contact area, shorten the Li+ diffusion length, and accommodate the strain induced by the volume change during the electrochemical reaction. Moreover, the hybridization with carbon could largely improve the conductivity of the electrode. (C) 2014 Elsevier Ltd. All rights reserved.
机译:开发新的负极材料以满足下一代可充电锂离子电池(LIB)的高能量需求仍然是一项艰巨的工作。在这项工作中,已经设计并通过冷冻干燥辅助路线合成了分层多孔的Mo2C-C(HP-Mo2C-C)杂化物。所得的HP-MO2C-C杂化物的表面积高达200.6 m(2)g(-1)。当被评估为LIB的负极材料时,HP-Mo2C-C混合动力电池在比容量,循环稳定性和倍率性能方面显示出出色的锂存储性能。孔工程和与碳的杂化被认为是电化学性能显着改善的原因。新颖的互连孔结构使电解质易于扩散,同时可以增加HP-MO2C-C /电解质的接触面积,缩短Li +扩散长度,并适应电化学反应过程中体积变化引起的应变。而且,与碳的杂化可以大大提高电极的电导率。 (C)2014 Elsevier Ltd.保留所有权利。

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