Li Yang, Yang Wang, Yang Wu, Wang Ziqi, Rong Jianhua, Wang Guoxiu, Xu Chengjun, Kang Feiyu, Dong Liubing
College of Chemistry and Materials Science, Jinan University, Guangzhou, 511443, People's Republic of China.
Centre for Clean Energy Technology, University of Technology Sydney, Sydney, NSW, 2007, Australia.
Nanomicro Lett. 2021 Mar 18;13(1):95. doi: 10.1007/s40820-021-00625-3.
Aqueous Zn-ion hybrid supercapacitors (ZHSs) are increasingly being studied as a novel electrochemical energy storage system with prominent electrochemical performance, high safety and low cost. Herein, high-energy and anti-self-discharge ZHSs are realized based on the fibrous carbon cathodes with hierarchically porous surface and O/N heteroatom functional groups. Hierarchically porous surface of the fabricated free-standing fibrous carbon cathodes not only provides abundant active sites for divalent ion storage, but also optimizes ion transport kinetics. Consequently, the cathodes show a high gravimetric capacity of 156 mAh g, superior rate capability (79 mAh g with a very short charge/discharge time of 14 s) and exceptional cycling stability. Meanwhile, hierarchical pore structure and suitable surface functional groups of the cathodes endow ZHSs with a high energy density of 127 Wh kg, a high power density of 15.3 kW kg and good anti-self-discharge performance. Mechanism investigation reveals that ZHS electrochemistry involves cation adsorption/desorption and ZnSO(OH)·5HO formation/dissolution at low voltage and anion adsorption/desorption at high voltage on carbon cathodes. The roles of these reactions in energy storage of ZHSs are elucidated. This work not only paves a way for high-performance cathode materials of ZHSs, but also provides a deeper understanding of ZHS electrochemistry.
水系锌离子混合超级电容器(ZHSs)作为一种具有卓越电化学性能、高安全性和低成本的新型电化学储能系统,正受到越来越多的研究。在此,基于具有分级多孔表面和O/N杂原子官能团的纤维状碳阴极,实现了高能量和抗自放电的ZHSs。所制备的独立式纤维状碳阴极的分级多孔表面不仅为二价离子存储提供了丰富的活性位点,还优化了离子传输动力学。因此,阴极表现出156 mAh g的高比容量、优异的倍率性能(在非常短的14 s充放电时间下为79 mAh g)和出色的循环稳定性。同时,阴极的分级孔结构和合适的表面官能团赋予ZHSs 127 Wh kg的高能量密度、15.3 kW kg的高功率密度和良好的抗自放电性能。机理研究表明,ZHS的电化学过程包括在低电压下阳离子的吸附/脱附和ZnSO(OH)·5H₂O的形成/溶解,以及在高电压下碳阴极上阴离子的吸附/脱附。阐明了这些反应在ZHS储能中的作用。这项工作不仅为ZHS的高性能阴极材料铺平了道路,还为深入理解ZHS的电化学提供了帮助。