A critical review on nickel sulfide-based electrode materials for supercapacitors

IF 8.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Critical Reviews in Solid State and Materials Sciences Pub Date : 2022-05-25 DOI:10.1080/10408436.2022.2078276
Yu-ting Wang, Xiong He, G. He, Chao Meng, Xuemin Chen, Fa‐tang Li, Yue Zhou
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引用次数: 3

Abstract

Abstract Supercapacitors (SCs) are currently numbered among the most outstanding energy storage and supply devices due to their high power density, durable cycle life, and wide operating temperature range. However, the wide application of SCs is still subject to the low energy density, which drives researchers to extensively look for high-performance electrode materials. In recent years, nickel sulfide-based materials have been widely studied as promising electrode materials for SCs due to their superior theoretical specific capacity, high redox activity, and rapid electric conduction, but the inferior active material utilization efficiency and poor reaction kinetics limit their practical demand in SCs. In this review, we briefly introduced the energy storage mechanism of nickel sulfide electrode materials used in supercapacitors and then launched an overview of improving performance. A particular emphasis is on the modification strategies to accelerate the electron conduction and mass transfer process through carbon recombination, metal heteroatom doping, interfacial electric field construction, exposure of edge active sites and large specific surface area, and building of ion diffusion channels. Finally, we discuss the research orientation of nickel sulfide-based electrode materials.
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超级电容器用硫化镍基电极材料的研究进展
摘要超级电容器以其高功率密度、高循环寿命、宽工作温度范围等优点,成为当前最突出的储能和供电器件之一。然而,SCs的广泛应用仍然受到能量密度低的限制,这促使研究人员广泛寻找高性能的电极材料。近年来,硫化镍基材料由于其优越的理论比容量、高的氧化还原活性和快速的导电性能,作为极具应用前景的电极材料得到了广泛的研究,但活性材料利用率较低和反应动力学较差限制了其在超导材料中的实际应用。本文简要介绍了用于超级电容器的硫化镍电极材料的储能机理,并对其性能的改进进行了综述。重点介绍了通过碳复合、金属杂原子掺杂、界面电场的构建、边缘活性位点和大比表面积的暴露以及离子扩散通道的建立来加速电子传导和传质过程的修饰策略。最后讨论了硫化镍基电极材料的研究方向。
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来源期刊
CiteScore
22.10
自引率
2.80%
发文量
0
审稿时长
3 months
期刊介绍: Critical Reviews in Solid State and Materials Sciences covers a wide range of topics including solid state materials properties, processing, and applications. The journal provides insights into the latest developments and understandings in these areas, with an emphasis on new and emerging theoretical and experimental topics. It encompasses disciplines such as condensed matter physics, physical chemistry, materials science, and electrical, chemical, and mechanical engineering. Additionally, cross-disciplinary engineering and science specialties are included in the scope of the journal.
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