Luan Yuting, Hu Rong, Fang Yongzheng, Zhu Kai, Cheng Kui, Yan Jun, Ye Ke, Wang Guiling, Cao Dianxue
Key Laboratory of Superlight Material and Surface Technology of Ministry of Education, College of Material Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, People's Republic of China.
Nanomicro Lett. 2019 Apr 3;11(1):30. doi: 10.1007/s40820-019-0260-6.
Lithium/potassium ion capacitors (LICs/PICs) have been proposed to bridge the performance gap between high-energy batteries and high-power capacitors. However, their development is hindered by the choice, electrochemical performance, and preparation technique of the battery-type anode materials. Herein, a nitrogen and phosphorus dual-doped multilayer graphene (NPG) material is designed and synthesized through an arc discharge process, using low-cost graphite and solid nitrogen and phosphorus sources. When employed as the anode material, NPG exhibits high capacity, remarkable rate capability, and stable cycling performance in both lithium and potassium ion batteries. This excellent electrochemical performance is ascribed to the synergistic effect of nitrogen and phosphorus doping, which enhances the electrochemical conductivity, provides a higher number of ion storage sites, and leads to increased interlayer spacing. Full carbon-based NPG‖LiPF‖active carbon (AC) LICs and NPG‖KPF‖AC PICs are assembled and show excellent electrochemical performance, with competitive energy and power densities. This work provides a route for the large-scale production of dual-doped graphene as a universal anode material for high-performance alkali ion batteries and capacitors.
锂/钾离子电容器(LICs/PICs)已被提出用于弥合高能电池和高功率电容器之间的性能差距。然而,它们的发展受到电池型负极材料的选择、电化学性能和制备技术的阻碍。在此,通过电弧放电过程,使用低成本的石墨以及固态氮和磷源,设计并合成了一种氮磷双掺杂多层石墨烯(NPG)材料。当用作负极材料时,NPG在锂离子电池和钾离子电池中均表现出高容量、出色的倍率性能和稳定的循环性能。这种优异的电化学性能归因于氮磷掺杂的协同效应,该效应增强了电化学导电性,提供了更多的离子存储位点,并导致层间距增加。组装了全碳基NPG‖LiPF‖活性炭(AC)LICs和NPG‖KPF‖AC PICs,它们表现出优异的电化学性能,具有具有竞争力的能量和功率密度。这项工作为大规模生产双掺杂石墨烯提供了一条途径,该石墨烯可作为高性能碱离子电池和电容器的通用负极材料。