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The role of nanomaterials in redox-based supercapacitors for next generation energy storage devices

机译:纳米材料在redox-based的角色为下一代能源超级电容器存储设备

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摘要

The development of more efficient electrical storage is a pressing requirement to meet future societal and environmental needs. This demand for more sustainable, efficient energy storage has provoked a renewed scientific and commercial interest in advanced capacitor designs in which the suite of experimental techniques and ideas that comprise nanotechnology are playing a critical role. Capacitors can be charged and discharged quickly and are one of the primary building blocks of many types of electrical circuit, from microprocessors to large-sale power supplies, but usually have relatively low energy storage capability when compared with batteries. The application of nanostructured materials with bespoke morphologies and properties to electrochemical supercapacitors is being intensively studied in order to provide enhanced energy density without comprising their inherent high power density and excellent cyclability. In particular, electrode materials that exploit physical adsorption or redox reactions of electrolyte ions are foreseen to bridge the performance disparity between batteries with high energy density and capacitors with high power density. In this review, we present some of the novel nanomaterial systems applied for electrochemical supercapacitors and show how material morphology, chemistry and physical properties are being tailored to provide enhanced electrochemical supercapacitor performance.
机译:更高效的电气的发展满足未来的存储是一个紧迫的要求社会和环境的需要。更可持续、高效储能引发了新一轮科学和商业先进的电容器的设计感兴趣实验技术的套件和想法组成纳米技术发挥了至关重要的作用。快速释放,是主要的之一许多类型的电气的构建块从微处理器电路、大力量供应,但通常有相对较低的能量存储能力与电池相比。纳米材料的应用定制的形态和属性电化学超级电容器是深入研究以提供增强的不包括其固有的能量密度高功率密度和优秀的cyclability。特别地,利用电极材料物理吸附或氧化还原反应电解质离子桥的预见之间的性能差距电池高能量密度和高功率电容器密度。新型纳米材料系统申请电化学超级电容器和展示材料形貌、化学和物理正在根据提供增强的属性电化学超级电容器的性能。

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