A comprehensive analysis of supercapacitors with current limitations and emerging trends in research

IF 2.6 4区 化学 Q3 ELECTROCHEMISTRY
Maitri Libber, Narendra Gariya, Manoj Kumar
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Abstract

Supercapacitor technology has been continuously advancing to improve material performance and energy density by utilizing new technologies like hybrid materials and electrodes with nanostructures. Along with fundamental principles, this article covers various types of supercapacitors, such as hybrid, electric double-layer, and pseudocapacitors. Further, comprehensive electrochemical characterization methods, including galvanostatic charge–discharge, electrochemical impedance spectroscopy, cyclic voltammetry, and other techniques (structural characterization, which includes methods such as scanning electron microscopy (SEM) and transmission electron microscopy (TEM), X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), and Brunauer–Emmett–Teller (BET) analysis), provide information on the behavior and performance of supercapacitors. Additionally, supercapacitors are being studied for their key applications, which include industrial uses, renewable energy systems, electric vehicles, and portable electronics. Along with discussing existing limitations—such as comparatively lower energy density in comparison to batteries—the article also highlights emerging trends that could help address these limitations in the future, like the development of innovative materials and inventive electrode designs. Finally, the discussion concludes with suggestions for future research focused on enhancing supercapacitor performance and broadening their range of applications, which highlights their contribution to the development of an ecosystem for energy storage that is more effective and sustainable.

Abstract Image

综合分析超级电容器的局限性和研究的新趋势
超级电容器技术一直在不断发展,通过利用混合材料和纳米结构电极等新技术来提高材料性能和能量密度。除了基本原理外,本文还介绍了各种类型的超级电容器,如混合电容器、双层电电容器和伪电容器。此外,综合电化学表征方法,包括恒流充放电、电化学阻抗谱、循环伏安法等技术(结构表征,包括扫描电子显微镜(SEM)和透射电子显微镜(TEM)、x射线衍射(XRD)、傅里叶变换红外光谱(FTIR)和布鲁诺尔-埃米特-泰勒(BET)分析等方法);提供有关超级电容器的行为和性能的信息。此外,超级电容器正在研究其关键应用,包括工业用途、可再生能源系统、电动汽车和便携式电子产品。除了讨论现有的限制——比如与电池相比相对较低的能量密度——这篇文章还强调了未来有助于解决这些限制的新兴趋势,比如创新材料的发展和发明电极的设计。最后,讨论总结了对未来研究的建议,重点是提高超级电容器的性能和扩大其应用范围,这突出了它们对更有效和可持续的储能生态系统发展的贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.80
自引率
4.00%
发文量
227
审稿时长
4.1 months
期刊介绍: The Journal of Solid State Electrochemistry is devoted to all aspects of solid-state chemistry and solid-state physics in electrochemistry. The Journal of Solid State Electrochemistry publishes papers on all aspects of electrochemistry of solid compounds, including experimental and theoretical, basic and applied work. It equally publishes papers on the thermodynamics and kinetics of electrochemical reactions if at least one actively participating phase is solid. Also of interest are articles on the transport of ions and electrons in solids whenever these processes are relevant to electrochemical reactions and on the use of solid-state electrochemical reactions in the analysis of solids and their surfaces. The journal covers solid-state electrochemistry and focusses on the following fields: mechanisms of solid-state electrochemical reactions, semiconductor electrochemistry, electrochemical batteries, accumulators and fuel cells, electrochemical mineral leaching, galvanic metal plating, electrochemical potential memory devices, solid-state electrochemical sensors, ion and electron transport in solid materials and polymers, electrocatalysis, photoelectrochemistry, corrosion of solid materials, solid-state electroanalysis, electrochemical machining of materials, electrochromism and electrochromic devices, new electrochemical solid-state synthesis. The Journal of Solid State Electrochemistry makes the professional in research and industry aware of this swift progress and its importance for future developments and success in the above-mentioned fields.
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