Fang Xue, Yang Cong, Zhang Xiaochen, Wang Yang, Yu Jiali
Institute of Advanced Technology, Heilongjiang Academy of Sciences, Harbin 150001, China.
Institute of Low-dimensional Materials Genome Initiative, College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518060, China.
Nanomaterials (Basel). 2024 Jan 12;14(2):182. doi: 10.3390/nano14020182.
In this work, a bimetallic sulfide-coupled graphene hybrid was designed and constructed for capacitive energy storage. The hybrid structure involved decorating copper-cobalt-sulfide (CuCoS) nanoparticles onto graphene layers, with the nanoparticles anchored within the graphene layers, forming a hybrid energy storage system. In this hybrid structure, rGO can work as the substrate and current collector to support the uniform distribution of the nanoparticles and provides efficient transportation of electrons into and out of the electrode. In the meantime, CuCoS-active materials are expected to offer an evident enhancement in electrochemical activities, due to the rich valence change provided by Cu and Co. Benefiting from the integrated structure of CuCoS nanoparticles and highly conductive graphene substrates, the prepared CuCoS@rGO electrode exhibited a favorable capacitive performance in 1 M KOH. At 1 A g, CuCoS@rGO achieved a specific capacitance of 410 F g. The capacitance retention at 8 A g was 70% of that observed at 1 A g, affirming the material's excellent rate capability. At the current density of 5 A g, the electrode underwent 10,000 charge-discharge cycles, retaining 98% of its initial capacity, which indicates minimal capacity decay and showcasing excellent cycling performance.
在这项工作中,设计并构建了一种用于电容式储能的双金属硫化物耦合石墨烯复合材料。该复合结构包括在石墨烯层上装饰铜钴硫化物(CuCoS)纳米颗粒,纳米颗粒锚定在石墨烯层内,形成一个混合储能系统。在这种复合结构中,还原氧化石墨烯(rGO)可以作为基底和集流体,以支持纳米颗粒的均匀分布,并提供电子进出电极的有效传输。同时,由于铜和钴提供的丰富价态变化,CuCoS活性材料有望显著提高电化学活性。得益于CuCoS纳米颗粒和高导电性石墨烯基底的集成结构,制备的CuCoS@rGO电极在1 M KOH中表现出良好的电容性能。在1 A g时,CuCoS@rGO的比电容达到410 F g。在8 A g时的电容保持率为1 A g时的70%,证实了该材料优异的倍率性能。在5 A g的电流密度下,该电极进行了10000次充放电循环,保持了其初始容量的98%,这表明容量衰减极小,展示出优异的循环性能。