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Metal Oxide and Hydroxide–Based Aqueous Supercapacitors: From Charge Storage Mechanisms and Functional Electrode Engineering to Need‐Tailored Devices

机译:基于金属氧化物和氢氧化物的水性超级电容器:从电荷存储机制和功能电极工程到需要量身定制的设备

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摘要

Energy storage devices that efficiently use energy, in particular renewable energy, are being actively pursued. Aqueous redox supercapacitors, which operate in high ionic conductivity and environmentally friendly aqueous electrolytes, storing and releasing high amounts of charge with rapid response rate and long cycling life, are emerging as a solution for energy storage applications. At the core of these devices, electrode materials and their assembling into rational configurations are the main factors governing the charge storage properties of supercapacitors. Redox‐active metal compounds, particularly oxides and hydroxides that store charge via reversible valence change redox reactions with electrolyte ions, are prospective candidates to optimize the electrochemical performance of supercapacitors. To address this target, collaborative investigations, addressing different streams, from fundamental charge storage mechanisms and electrode materials engineering to need‐tailored device assemblies, are the key. Over the last few years, significant achievements in metal oxide and hydroxide–based aqueous supercapacitors have been reported. This work discusses the most recent achievements and trends in this field and brings into the spotlight the authors' viewpoints.
机译:人们正在积极寻求有效利用能量,特别是可再生能源的储能装置。水性氧化还原超级电容器在高离子电导率和环境友好的水性电解质中运行,以快速的响应速度和长的循环寿命来存储和释放大量电荷,已成为能量存储应用的解决方案。在这些设备的核心,电极材料及其组装成合理的配置是控制超级电容器电荷存储特性的主要因素。氧化还原活性金属化合物,特别是通过与电解质离子可逆的价变氧化还原反应来存储电荷的氧化物和氢氧化物,是优化超级电容器电化学性能的潜在候选物。为了实现这一目标,从基本电荷存储机制和电极材料工程到需要量身定制的设备组装,针对不同流的协作研究是关键。在过去的几年中,已经报道了基于金属氧化物和氢氧化物的水性超级电容器的重大成就。这项工作讨论了该领域的最新成就和趋势,并引起了作者观点的关注。

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