Shalakha Saha, Chandra Shekhar Sharma, Nishar Hameed and Nisa Salim
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Integrating nickel nitride into the cobalt–molybdenum hybrid sulfide produced a hierarchical structure, where the nanosheets assemble to form a flower-like structure, which appears to be an interconnected continuous structure analogous to a flower string. Such hierarchical structures enhance the exposure of redox active sites, providing multiple diffusion pathways and acting as an electrolyte reservoir. On evaluating CMS/NiN/NF for its charge storage properties, a specific capacitance value of 4411 F g<small><sup>−1</sup></small> at a current density of 2 A g<small><sup>−1</sup></small> was attained, outperforming the hybrid sulfide. Further, when assembled in an asymmetric device with CMS/NiN/NF as the positive electrode and reduced graphene oxide (rGO) as the negative electrode, it exhibits a specific energy value of 58 Wh kg<small><sup>−1</sup></small> at a specific power of 200 W kg<small><sup>−1</sup></small>. 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引用次数: 0
摘要
通过创新地使用分层多组分电极来追求下一代超级电容器,我们采用了一种复杂的混合策略。通过协同整合不同类别的材料,我们的目标是利用和放大它们的独特特性,为储能技术的突破性进步奠定基础。本文研究了将钴钼基杂化硫化物与氮化镍集成为一个体系(CMS/NiN/NF)作为超级电容器电极的电化学性能。将氮化镍集成到钴钼杂化硫化物中产生层次结构,纳米片组装形成花状结构,这似乎是一个类似于花弦的相互连接的连续结构。这种分层结构增强了氧化还原活性位点的暴露,提供了多种扩散途径并充当电解质储存器。在评价CMS/NiN/NF的电荷存储性能时,在电流密度为2 ag−1时,获得了4411 F g−1的比电容值,优于杂化硫化物。此外,当以CMS/NiN/NF为正极,还原氧化石墨烯(rGO)为负极,在不对称器件中组装时,其比能值为58 Wh kg - 1,比功率为200 W kg - 1。因此,混合方法在生产用于高性能储能装置的混合材料方面证明是有益的。
Elucidating the synergistic benefits of the ternary metal components in a cobalt–molybdenum hybrid sulfide–nickel nitride composite as supercapacitor electrodes†
Inspired by pursuing next-generation supercapacitors through the innovative use of hierarchical multi-component electrodes, we embraced a sophisticated blending strategy. By synergistically integrating diverse classes of materials, we aimed to harness and amplify their unique properties, setting the stage for groundbreaking advancements in energy storage technology. The present study investigates the electrochemical properties of the cobalt–molybdenum-based hybrid sulfide and nickel nitride integrated into one system (CMS/NiN/NF) for application as electrodes in supercapacitors. Integrating nickel nitride into the cobalt–molybdenum hybrid sulfide produced a hierarchical structure, where the nanosheets assemble to form a flower-like structure, which appears to be an interconnected continuous structure analogous to a flower string. Such hierarchical structures enhance the exposure of redox active sites, providing multiple diffusion pathways and acting as an electrolyte reservoir. On evaluating CMS/NiN/NF for its charge storage properties, a specific capacitance value of 4411 F g−1 at a current density of 2 A g−1 was attained, outperforming the hybrid sulfide. Further, when assembled in an asymmetric device with CMS/NiN/NF as the positive electrode and reduced graphene oxide (rGO) as the negative electrode, it exhibits a specific energy value of 58 Wh kg−1 at a specific power of 200 W kg−1. Thus, the blending approach proved rewarding in producing hybrid materials for high-performance energy storage devices.
期刊介绍:
Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.