Sun Wei, Ji Xiujie, Gao Guohua, Wu Guangming
Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, School of Physics and Science Engineering, Tongji University Shanghai 200092 PR China
RSC Adv. 2018 Aug 6;8(49):27924-27934. doi: 10.1039/c8ra05298k. eCollection 2018 Aug 2.
It remains a challenge to develop a facile approach to prepare positive and negative electrode materials with good electrochemical performance for application in hybrid supercapacitors. In this study, based on a facile strategy, a single graphene oxide-wrapped VO nanosphere precursor is transformed into both electrodes through different thermal treatments (, graphene/VN nanospheres negative electrode materials and graphene/VO nanospheres positive electrode materials) for hybrid supercapacitors. The conformally wrapped graphene has a significant influence on the electrochemical performance of VN and VO, deriving from the simultaneous improvements in electronic conductivity, structural stability, and electrolyte transport. Benefitting from these merits, the as-prepared graphene/VN nanospheres and graphene/VO nanospheres exhibit excellent electrochemical performance for HSCs with high specific capacitance (83 F g) and good long cycle life (90% specific capacitance retained after 7000 cycles). Furthermore, graphene/VN nanospheres//graphene/VO nanosphere HSCs can deliver a high energy density of 35.2 W h kg at 0.4 kW kg and maintain about 70% high energy density even at a high power density of 8 kW kg. Such impressive results of the hybrid supercapacitors show great potential in vanadium-based electrode materials for promising applications in high performance energy storage systems.
开发一种简便的方法来制备具有良好电化学性能的正负极材料以应用于混合超级电容器仍然是一项挑战。在本研究中,基于一种简便的策略,通过不同的热处理将单一的氧化石墨烯包裹的VO纳米球前驱体转变为用于混合超级电容器的两个电极(即石墨烯/VN纳米球负极材料和石墨烯/VO纳米球正极材料)。共形包裹的石墨烯对VN和VO的电化学性能有显著影响,这源于电子导电性、结构稳定性和电解质传输的同时改善。受益于这些优点,所制备的石墨烯/VN纳米球和石墨烯/VO纳米球对混合超级电容器表现出优异的电化学性能,具有高比电容(83 F g)和良好的长循环寿命(7000次循环后保留90%的比电容)。此外,石墨烯/VN纳米球//石墨烯/VO纳米球混合超级电容器在0.4 kW kg时可提供35.2 W h kg的高能量密度,即使在8 kW kg的高功率密度下也能保持约70%的高能量密度。混合超级电容器的这些令人印象深刻的结果表明,钒基电极材料在高性能储能系统中的应用具有巨大潜力。