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Electrochemical intercalation of lithium Into a natural graphite anode in quaternary ammonium-based ionic liquid electrolytes

机译:锂的电化学嵌入到季铵基离子液体电解质中的天然石墨阳极中

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摘要

Electrochemical intercalation of lithium into a natural graphite anode was investigated in electrolytes based on a room temperature ionic liquid consisting of trimethyl-n- hexylammonium (TMHA) cation and bis(trifluoromethanesulfone) imide (TFSI) anion. Graphite electrode was less prone to forming effective passivation film in 1 M LiTFSI/TMHA-TFSI ionic electrolyte. Reversible intercalation/de-intercalation of TMHA cations into/from the graphene interlayer was confirmed by using cyclic voltammetry, gal-vanostatic measurements, and ex situ X-ray diffraction technique. Addition of 20 vol percent chloroethylenene carbonate (Cl-EC), ethylene carbonate (EC), vinyl carbonate (VC), or ethylene sulfite (ES) into the ionic electrolyte resulted in the formation of solid electrolyte interface (SEI) film prior to TMHA intercalation and allowed the formation of Li-Cg graphite interlayer compound. In the ionic electrolyte containing 20 vol percent Cl-EC, the natural graphite anode exhibited excellent electrochemical behavior with 352.9 mAh/g discharge capacity and 87.1 percent coulombic efficiency at the first cycle. A stable reversible capacity of around 360 mAh/g was obtained in the initial 20 cycles without any noticeable capacity loss. Mechanisms concerning the significant electrochemical improvement of the graphite anode were discussed. Ac impedance and SEM studies demonstrated the formation of a thin, homogenous, compact and more conductive SEI layer on the graphite electrode surface.
机译:以三甲基-正己基铵(TMHA)阳离子和双(三氟甲磺酮)亚胺(TFSI)阴离子组成的室温离子液体为基础,研究了锂在电解质中将锂电化学嵌入到天然石墨阳极中。石墨电极在1 M LiTFSI/TMHA-TFSI离子电解质中不易形成有效的钝化膜。使用循环伏安法、gal-vanostatic 测量和原位 X 射线衍射技术证实了 TMHA 阳离子进入/从石墨烯夹层的可逆插层/去插层。在离子电解质中加入20体积%的氯乙烯碳酸酯(Cl-EC)、碳酸乙烯酯(EC)、碳酸乙烯酯(VC)或亚硫酸乙烯酯(ES)导致在TMHA插层之前形成固体电解质界面(SEI)膜,并形成Li-Cin石墨中间层化合物。在含有20 vol%Cl-EC的离子电解质中,天然石墨负极表现出优异的电化学行为,在第一次循环时放电容量为352.9 mAh/g,库仑效率为87.1%。在最初的 20 个循环中,获得了约 360 mAh/g 的稳定可逆容量,没有任何明显的容量损失。讨论了石墨负极电化学显著改进的机理。交流阻抗和SEM研究表明,在石墨电极表面形成了一层薄的、均匀的、致密的、导电性更强的SEI层。

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