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首页> 外文期刊>Electrochimica Acta >Computer simulation study of differential capacitance and charging mechanism in graphene supercapacitors: Effects of cyano-group in ionic liquids
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Computer simulation study of differential capacitance and charging mechanism in graphene supercapacitors: Effects of cyano-group in ionic liquids

机译:石墨烯超级电容器差分电容和充电机制的计算机仿真研究:氰基在离子液中的影响

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摘要

Molecular dynamics simulation is employed to study graphene supercapacitors. Four different ionic liquids are considered as an electrolyte, each of which is combination of the same cation 1-ethyl-3-methylimidazolium([emim]+), and different, cyano-containing anions, thiocyanate ([SCN]–), dicyanamide ([N(CN)2]–), tricyanomethanide ([C(CN)3]–), and tetracyanoborate ([B(CN)4]–), respectively. In particular we investigate how electric double layer structure and electrical properties are affected by the structure of cyano containing anions. Cations and anions make alternating structure near charged electrode. Differential capacitances in four ionic liquids are found to have a maximum value at negative potential. The maximum capacitances are comparable to each other, but the corresponding potential shifts to the negative side as more cyano groups are attached to the anion. Starting from the interfacial layer, the effects of the further ionic layers on differential capacitance are systematically investigated. Comparing charges of the electrode and those of ionic layers, we find that differential capacitance behavior mainly stems from the ion exchange between electric double layer and bulk region. The ion exchange behaviors are decomposed into cation and anion contributions. The differential charging mechanisms of the system are strongly dependent on the electric potential. The maximum capacitances are consequence of rapid desorption of respective anions.
机译:用于研究石墨烯超级电容器的分子动力学模拟。四种不同的离子液体被认为是电解质,每种电解质是相同阳离子1-乙基-3-甲基咪唑鎓([emim] +)的组合,不同的含氰阴离子,硫氰酸酯(β-),二氰胺([N(CN)2] - ),三氰基甲酰胺([C(CN)3] - )和四环硼酸盐([B(CN)4] - )。特别是我们研究了电双层结构和电气性质如何受到含有阴离子的结构的影响。阳离子和阴离子在带电电极附近进行交替结构。发现四个离子液体中的差分电容在负电位下具有最大值。最大电容彼此相当,但随着更多的氰基连接到阴离子,相应的电位转移到负侧。从界面层开始,系统地研究了其他离子层对差动电容的影响。比较电极的电荷和离子层的电荷,我们发现差分电容行为主要源于电双层和散装区域之间的离子交换。离子交换行为分解成阳离子和阴离子贡献。系统的差分充电机构强烈依赖于电位。最大电容是相应阴离子快速解吸的结果。

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