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Supercapacitive Properties of Micropore- and Mesopore-Rich Activated Carbon in Ionic-Liquid Electrolytes with Various Constituent Ions

机译:具有各种组成离子的离子液体电解质中微孔和富含富含碳活性炭的超级电容性质

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摘要

Ionic-liquid (IL) electrolytes, characterized by large potential windows, intrinsic ionic conductivity, low environmental hazard, and high safety, are used for micropore- and mesopore-rich activated-carbon (AC(micro) and AC(meso)) supercapacitors. IL electrolytes consisting of various cations [1-ethyl-3-methylimidazolium (EMI+), N-propyl-N-methylpyrrolidinium (PMP+), and N-butyl-N-methylpyrrolidinium (BMP+)] and various anions [bis(trifluoromethylsulfonyl)imide (TFSI-), BF4-, and bis(fluorosulfonyl)imide (FSI-)] are investigated. The electrolyte conductivity, viscosity, and ion transport properties at the AC(micro) and AC(meso) electrodes are studied. In addition, the capacitance, rate capability, and cycling stability of the two types of AC electrodes are systematically examined and post-mortem material analyses are conducted. The effects of IL composition on the charge-discharge capacitances of the AC(micro) electrodes are more pronounced than those for the AC(meso) electrodes. The FSI-based IL electrolytes, for which electrochemical properties are cation dependent, are found to be promising. Incorporating EMI+ with FSI- results in a low electrolyte viscosity and a fast ion transport, giving rise to optimized electrode capacitance and rate capability. Replacing EMI+ with PMP+ increases the cell voltage (to 3.5 V) and maximum energy density (to 42 Wh kg(-1)) of the AC(micro) cell at the cost of cycling stability.
机译:离子 - 液体(IL)电解质,其特征在于大潜在的窗口,内在离子导电性,低环境危害和高安全性,用于微孔和富含富含型富含的活性 - 碳(AC(Micro)和AC(Meso))超级电容器。 IL电解质由各种阳离子[1-乙基-3-甲基咪唑鎓(EMI +),N-丙基-N-甲基吡咯烷鎓(PMP +)和正丁基-N-甲基吡咯烷鎓(BMP +)]和各种阴离子[双(三氟甲基磺酰基)酰亚胺(TFSI-),BF4-和双(氟磺酰基)酰亚胺(FSI-)进行了研究。研究了AC(微)和AC(MESO)电极处的电解液导电性,粘度和离子传输性能。另外,系统地检查了两种类型的AC电极的电容,速率和循环稳定性,并进行后验尸材料分析。 IL组成对AC(微)电极的电荷 - 放电电容的影响比AC(MESO)电极的电荷放电电容更加明显。发现电化学性质依赖于阳离子的FSI基IL电解质。用FSI掺入EMI +导致电解质粘度和快速离子运输,产生优化的电极电容和速率能力。用PMP +代替EMI +以循环稳定性的成本增加电池电压(至3.5V)和AC(微)电池的最大能量密度(至42WH kg(-1))。

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