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用于超级电容器的纳米和微结构电活性材料培养的电化学沉积:最新进展与未来展望

Electrochemical Deposition for Cultivating Nano- and Microstructured Electroactive Materials for Supercapacitors: Recent Developments and Future Perspectives.

作者信息

Kumar S Ashok, Sahoo Surjit, Laxminarayana Gurunatha Kargal, Rout Chandra Sekhar

机构信息

Centre for Nano and Material Sciences, Jain (Deemed-to-be University), Jain Global Campus, Kanakapura Road, Bangalore, Karnataka, 562112, India.

Department of Industrial and Manufacturing Systems Engineering, Kansas State University, Manhattan, Kansas, 66506, USA.

出版信息

Small. 2024 Oct;20(40):e2402087. doi: 10.1002/smll.202402087. Epub 2024 Jun 7.

Abstract

The globe is currently dealing with serious issues related to the world economy and population expansion, which has led to a significant increase in the need for energy. One of the most promising energy devices for the next generation of energy technology is the supercapacitor (SC). Among the numerous nanostructured materials examined for SC electrodes, inorganic nanosheets are considered to be the most favorable electrode materials because of their excellent electrochemical performance due to their large surface area, very low layer thickness, and tunable diverse composition. Various inorganic nanosheets (NS) such as metal oxides, metal chalcogenides, metal hydroxides, and MXenes show substantial electrochemical activity. Herein, a comprehensive survey of inorganic NS arrays synthesized through the electrodeposition method is reported with the discussion on detailed growth mechanism and their application in the fabrication of SC electrodes/devices for powering flexible and wearable electronics appliances. To begin with, the first section will feature the various types of electrodeposition working mechanism, SC types and their working mechanisms, importance of nanosheet structure for SCs. This review gives a profound interpretation of supercapacitor electrode materials and their performances in different domains. Finally, a perspective on NS array through electrodeposition method applications in diverse fields is extensively examined.

摘要

全球目前正在应对与世界经济和人口增长相关的严峻问题,这导致能源需求大幅增加。超级电容器(SC)是下一代能源技术中最具潜力的能源装置之一。在众多用于SC电极的纳米结构材料中,无机纳米片因其大表面积、极低的层厚度和可调节的多样组成而具有优异的电化学性能,被认为是最理想的电极材料。各种无机纳米片(NS),如金属氧化物、金属硫族化合物、金属氢氧化物和MXenes,都表现出显著的电化学活性。本文报道了通过电沉积法合成的无机NS阵列的全面综述,并讨论了其详细的生长机制及其在制造用于为柔性和可穿戴电子设备供电的SC电极/器件中的应用。首先,第一部分将介绍各种类型的电沉积工作机制、SC类型及其工作机制、纳米片结构对SCs的重要性。本综述对超级电容器电极材料及其在不同领域的性能进行了深入解读。最后,广泛探讨了通过电沉积法在不同领域应用NS阵列的前景。

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