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A Binary Cyclic Carbonates-Based Electrolyte Containing Propylene Carbonate and Trifluoropropylene Carbonate for 5 V Lithium-Ion Batteries

机译:用于5 V锂离子电池的包含碳酸丙烯酯和碳酸三氟丙烯酯的二元环状碳酸酯基电解质

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摘要

To widen the operating potential window of electrolyte used for lithium-ion batteries, a binary cyclic carbonates-based electrolyte containing propylene carbonate (PC) and trifluoropropylene carbonate (TFPC) with an optimized volume ratio has been successfully proposed. The main function of additive TFPC is to establish a stable SEI layer on graphite electrode and suppress the intercalation reaction of PC molecules. Unlike the previous works, where the TFPC/PC involved electrolyte was simply estimated at a certain volume ration and recognized as an unfavorable system, in this work, the physical properties of the electrolyte solutions with a series of volume ratios of TFPC/PC and their electrochemical performances in a graphite/Li cell and 5 V LiNi0.5Mn1.5O4/Li cell have been systematically studied. The electrolyte of 1 mol dm (3) LiPF6-TFPC/PC (1:2) is adopted as the optimized system due to its high ionic conductivity, low viscosity, broad operating potential window, wide liquid temperature range (-50 similar to 240 degrees C) and suitable film-forming property. Both the graphite and LiNi0.5Mn1.5O4 electrodes were found to exhibit high reversible capacity and superb rate performance in the optimized electrolyte, making us have a new recognition of this important binary solvent. Considering its excellent physical and electrochemical properties, we therefore anticipate that the electrolyte based on TFPC and PC is a possible candidate for future LIBs that can work in a broader temperature range and high operation potential conditions. (C) 2015 Elsevier Ltd. All rights reserved.
机译:为了扩大用于锂离子电池的电解质的工作电势窗口,已经成功地提出了包含具有优化的体积比的碳酸亚丙酯(PC)和三氟碳酸亚丙酯(TFPC)的基于二元环状碳酸酯的电解质。添加剂TFPC的主要功能是在石墨电极上建立稳定的SEI层,并抑制PC分子的嵌入反应。与以前的工作不同,在该工作中,TFPC / PC所涉及的电解质只是在一定的体积比下估算并被认为是不利的系统,在这项工作中,电解质溶液的物理特性与一系列的TFPC / PC及其体积比有关。对石墨/锂电池和5 V LiNi0.5Mn1.5O4 / Li电池的电化学性能进行了系统的研究。采用1 mol dm(3)LiPF6-TFPC / PC(1:2)的电解质作为优化系统,因为它具有高离子电导率,低粘度,宽的工作电势范围,宽的液体温度范围(-50类似于240 ℃)和合适的成膜性。发现石墨电极和LiNi0.5Mn1.5O4电极在优化的电解液中均显示出高可逆容量和卓越的倍率性能,这使我们对这种重要的二元溶剂有了新的认识。考虑到其优异的物理和电化学性能,因此我们预计基于TFPC和PC的电解质可能是未来LIB的可能候选者,这些LIB可以在更宽的温度范围和较高的工作电势条件下工作。 (C)2015 Elsevier Ltd.保留所有权利。

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