Li Dan-Dan, Li Er-Chao, Ji Xiang-Yu, Yang Yan-Ru, Wang Xiao-Dong, Feng Guang
State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing102206, China.
Research Center of Engineering Thermophysics, North China Electric Power University, Beijing102206, China.
Langmuir. 2023 Jan 10;39(1):588-596. doi: 10.1021/acs.langmuir.2c02880. Epub 2022 Dec 22.
Ionic liquid (IL) electrolytes and carbon nanotube (CNT) electrodes have exhibited promising electrochemical performance in supercapacitors. Nevertheless, the adaptability of tricationic ILs (TILs) in CNT-based supercapacitors remains unknown. Herein, the performance of supercapacitors with (6,6), (8,8), (12,12), and (15,15) CNT electrodes in the TIL C(mim) was assessed via molecular dynamics simulations, paying attention to the electric double-layer (EDL) structures and the relations between the CNT curvature and capacitance. The results disclose that counterion and co-ion number densities near CNT electrodes have a marked reduction, compared with that of the graphene electrode. The capacitance of the EDL in the TIL increases significantly as the CNT curvature increases and the capacitance of the TIL/CNT systems is higher than that of the TIL/graphene system. Moreover, different EDL structures in the TIL and the monocationic IL (MIL) [Cmim][TfN] near CNT electrodes were revealed, showing higher-concentration anions [TfN] at the CNT surfaces in the TIL. It is also verified that the TIL has a greater energy-storage ability under high potentials. Furthermore, the almost flat or weakly camel-like capacitance-voltage (-) curve of EDLs in the TIL turns into a bell shape in the MIL, because of the ion accumulation at the CNT surfaces and the associations between ions.
离子液体(IL)电解质和碳纳米管(CNT)电极在超级电容器中展现出了良好的电化学性能。然而,三阳离子离子液体(TILs)在基于碳纳米管的超级电容器中的适应性仍然未知。在此,通过分子动力学模拟评估了在TIL C(mim)中具有(6,6)、(8,8)、(12,12)和(15,15)碳纳米管电极的超级电容器的性能,重点关注双电层(EDL)结构以及碳纳米管曲率与电容之间的关系。结果表明,与石墨烯电极相比,碳纳米管电极附近的抗衡离子和共离子数密度显著降低。随着碳纳米管曲率的增加,TIL中双电层的电容显著增加,且TIL/碳纳米管体系的电容高于TIL/石墨烯体系。此外,揭示了碳纳米管电极附近TIL和单阳离子离子液体(MIL)[Cmim][TfN]中不同的双电层结构,表明TIL中碳纳米管表面的阴离子[TfN]浓度更高。还证实了TIL在高电位下具有更强的储能能力。此外,由于离子在碳纳米管表面的积累以及离子之间的缔合,TIL中双电层几乎平坦或呈弱驼峰状的电容 - 电压(-)曲线在MIL中变成了钟形。