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Biomass derived carbon for supercapacitor applications: Review

机译:生物量衍生的超级电容器应用碳:审查

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The activated carbon based electrode materials are promising for applications in supercapacitors, fuel cells, and batteries due to their large surface area and porous structure. All the carbonaceous materials (CNTs, graphene, activated carbon) exhibit EDLCs type behavior based on the adsorption of ions at the electrode interface. On the other hand, the charge storage mechanism of pseudo-capacitive materials, including metal oxides and conducting polymers, is based on the rapid faradic reactions. Owing to this, the latter has a higher level of charge storage than the former, but at the same time, it suffers from a lack of conductivity and lowers cycle stability. To achieve a higher energy density for the supercapacitor without degrading its power density and cycle stability, one of the best solutions is to compound the carbon based materials with pseudocapacitive materials. This review briefly described the various carbon composites with metal oxides, but the main focus is on biomass-derived activated carbon for supercapacitor applications, as the green and sustainable source of energy is the demand of ever increasing global crisis. The ongoing challenges and future developments in this direction for building efficient energy storage systems are also addressed here.
机译:活性炭基电极材料是由于其大表面积和多孔结构而在超级电容器,燃料电池和电池中的应用。所有碳质材料(CNT,石墨烯,活性炭)表现出基于电极界面处的离子的吸附的EDLCS型行为。另一方面,伪电容材料的电荷储存机制包括金属氧化物和导电聚合物,基于快速的法律反应。由于这一点,后者具有比前者更高的电荷存储水平,但同时,它缺乏导电性和降低循环稳定性。为了实现超级电容器的更高能量密度而不降低其功率密度和循环稳定性,最好的溶液之一是将基于碳的材料用假壳材料复合。本综述简要介绍了具有金属氧化物的各种碳复合材料,但主要焦点是超级电容器应用的生物质衍生的活性炭,因为绿色和可持续的能源来源是越来越多的全球危机的需求。这里还解决了这种建立高效储能系统方向的持续挑战和未来发展。

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