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Graphitization as a Universal Tool to Tailor the Potential-Dependent Capacitance of Carbon Supercapacitors

机译:石墨化作为一种​​通用工具,可定制碳超级电容器的电位依赖性电容

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Most efforts to improve the energy density of supercapacitors are currently dedicated to optimized porosity or hybrid devices employing pseudocapacitive elements. Little attention has been given to the effects of the low charge carrier density of carbon on the total material capacitance. To study the effect of graphitization on the differential capacitance, carbon onion (also known as onion-like carbon) supercapacitors are chosen. The increase in density of states (DOS) related to the low density of charge carriers in carbon materials is an important effect that leads to a substantial increase in capacitance as the electrode potential is increased. Using carbon onions as a model, it is shown that this phenomenon cannot be related only to geometric aspects but must be the result of varying graphitization. This provides a new tool to significantly improve carbon supercapacitor performance, in addition to having significant consequences for the modeling community where carbons usually are approximated to be ideal metallic conductors. Data on the structure, composition, and phase content of carbon onions are presented and the correlation between electrochemical performance and electrical resistance and graphitization is shown. Highly graphitic carbons show a stronger degree of electrochemical doping, making them very attractive for enhancing the capacitance.
机译:目前,为提高超级电容器的能量密度所做的大多数努力都致力于优化孔隙率或采用伪电容元件的混合设备。碳的低载流子密度对整个材料电容的影响几乎没有引起注意。为了研究石墨化对差分电容的影响,选择了碳洋葱(也称为洋葱状碳)超级电容器。与碳材料中的电荷载流子的低密度有关的状态密度(DOS)的增加是一个重要的影响,随着电极电位的增加,电容会大大增加。以碳洋葱为模型,表明该现象不仅与几何形状有关,而且必须是石墨化程度不同的结果。这不仅为建模社区带来了重大后果,在建模社区中,碳通常被认为是理想的金属导体,这为显着提高碳超级电容器性能提供了一种新工具。给出了有关碳洋葱的结构,组成和相含量的数据,并显示了电化学性能与电阻和石墨化之间的关系。高度石墨化的碳表现出更强的电化学掺杂程度,使其对于增强电容非常有吸引力。

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