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The Recent Development of Polysaccharides Biomaterials and Their Performance for Supercapacitor Applications
Materials Research Bulletin ( IF 5.4 ) Pub Date : 2020-06-01 , DOI: 10.1016/j.materresbull.2020.110839
Tinesha Selvaraj , Veeradasan Perumal , Shing Fhan Khor , Leonard Sean Anthony , Subash C.B. Gopinath , Norani Muti Mohamed

Abstract The growth of global fossil energy consumption and environmental pollution has become an urgent problem to be resolved, compelling the development of green renewable energy and efficient energy storage technologies. Supercapacitors attract considerable research interest as high-performance energy storage devices that can contribute to the rapid growth of low- power electronics (e.g., wearable, portable electronic devices) and high-power military applications (e.g., guided missile technology and highly sensitive naval warheads). The performance of supercapacitors can be assessed in terms of electrochemical properties through the combination of electrode and electrolyte materials. Supercapacitors with high capacitance and excellent stability are beneficial to various research and technical fields. This article reviews recent advances in supercapacitor technology with respect to charge storage mechanisms, electrode and electrolyte materials, particularly biomaterials for green renewable energy storage devices due to their unique structure and remarkable properties. The main highlight is the implement of biomaterials as an energy storage technology because it is sustainable, environmentally friendly, degradable, low cost, and promising material. This article also reviews recent developments in supercapacitors with the use of polysaccharide materials, as well as other types of biomaterials used in energy storage applications.

中文翻译:

多糖生物材料的最新发展及其在超级电容器应用中的性能

摘要 全球化石能源消费的增长和环境污染已成为亟待解决的问题,迫切需要绿色可再生能源和高效储能技术的发展。超级电容器作为高性能储能设备吸引了相当多的研究兴趣,这些设备有助于低功率电子设备(例如,可穿戴、便携式电子设备)和高功率军事应用(例如,导弹技术和高灵敏度海军弹头)的快速增长)。超级电容器的性能可以通过电极和电解质材料的组合在电化学性能方面进行评估。具有高容量和优异稳定性的超级电容器有利于各种研究和技术领域。本文回顾了超级电容器技术在电荷存储机制、电极和电解质材料方面的最新进展,特别是绿色可再生能源存储设备的生物材料,因为它们具有独特的结构和卓越的性能。主要亮点是生物材料作为一种储能技术的实施,因为它是可持续的、环保的、可降解的、成本低的和有前途的材料。本文还回顾了使用多糖材料的超级电容器的最新进展,以及用于储能应用的其他类型的生物材料。由于其独特的结构和卓越的性能,特别是用于绿色可再生能源存储设备的生物材料。主要亮点是生物材料作为一种储能技术的实施,因为它是可持续的、环保的、可降解的、低成本的、有前途的材料。本文还回顾了使用多糖材料的超级电容器的最新进展,以及用于储能应用的其他类型的生物材料。由于其独特的结构和卓越的性能,特别是用于绿色可再生能源存储设备的生物材料。主要亮点是生物材料作为一种储能技术的实施,因为它是可持续的、环保的、可降解的、成本低的和有前途的材料。本文还回顾了使用多糖材料的超级电容器的最新进展,以及用于储能应用的其他类型的生物材料。
更新日期:2020-06-01
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