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首页> 外文期刊>ACS Omega >Fluorinated Electrolytes for Li-Ion Batteries: The Lithium Difluoro(oxalato)borate Additive for Stabilizing the Solid Electrolyte Interphase
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Fluorinated Electrolytes for Li-Ion Batteries: The Lithium Difluoro(oxalato)borate Additive for Stabilizing the Solid Electrolyte Interphase

机译:用于锂离子电池的氟化电解质:锂二氟(Oxalato)硼酸盐添加剂,用于稳定固体电解质间相互作用

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Fluorinated electrolytes based on fluoroethylene carbonate (FEC) have been considered as promising alternative electrolytes for high-voltage and high-energy capacity lithium-ion batteries (LIBs). However, the compatibility of the fluorinated electrolytes with graphite negative electrodes is unclear. In this paper, we have systematically investigated, for the first time, the stability of fluorinated electrolytes with graphite negative electrodes, and the result shows that unlike the ethylene carbonate (EC)-based electrolyte, the FEC-based electrolyte (EC was totally replaced by FEC) is incapable of forming a protective and effective solid electrolyte interphase (SEI) that protects the electrolyte from runaway reduction on the graphite surface. The reason is that the lowest unoccupied molecular orbital energy levels are also lowered by the introduction of fluorine into the solvent, and the FEC solvent has poorer resistance against reduction, leading to instability on the graphite negative electrode. To tackle this problem, two lithium salts of lithium bis(oxalato)borate and lithium difluoro(oxalato)borate (LiDFOB) have been investigated as negative-electrode film-forming additives. Incorporation of only 0.5 wt % LiDFOB to a FEC-based electrolyte [1.0 M LiPF_(6) in 3:7 (FEC–ethyl methyl carbonate)] results in excellent cycling performance of the graphite negative electrode. This improved property originates from the generation of a thinner and better quality SEI film with little LiF by the sacrificial reduction of the LiDFOB additive on the graphite negative electrode surface. On the other hand, this additive can stabilize the electrolyte by scavenging HF. Meanwhile, the incorporated LiDFOB additive has positive influence on the interphase layer on the positive electrode surface and significantly decreases the amount of HF formation, finally leading to improved cycling stability and rate capability of LiNi_(0.5)Mn_(1.5)O_(4) electrodes at a high cutoff voltage of 5 V. The data demonstrate that the LiDFOB additive not only exhibits a superior compatibility with graphite but also improves the electrochemical properties of high-voltage spinel LiNi_(0.5)Mn_(1.5)O_(4) positive electrodes considerably, confirming its potential as a prospective, multifunctional additive for 5 V fluorinated electrolytes in high-energy capacity lithium-ion batteries (LIBs).
机译:基于氟碳酯(FEC)的氟化电解质被认为是高压和高能容量锂离子电池(LIBS)的有前途的替代电解质。然而,氟化电解质与石墨负极的相容性尚不清楚。在本文中,我们已经系统地研究了具有石墨负电极的氟化电解质的稳定性,结果表明,与碳酸亚乙酯(EC)的电解质不同,基于FEC的电解质(EC完全被替换通过FEC)不能形成保护和有效的固体电解质相互作用(SEI),其保护电解质免受石墨表面上的失控。原因是通过将氟进入溶剂中的最低未占用的分子轨道能量水平,并且FEC溶剂具有较差的抗性,导致石墨负极上的不稳定性。为了解决这个问题,已经研究了两种锂双(草酸)硼酸锂(Oxalato)硼酸锂和二氟锂)硼酸锂(LidfoB)的锂盐作为负极成膜添加剂。将仅0.5wt%的LidfoB掺入基于FEC的电解质[1.0 m Lipf_(6),在3:7(FeC-乙基碳酸甲酯)]导致石墨负极的优异循环性能。这种改进的性质来自产生较薄和更好的SEI膜,通过LidfoB添加剂在石墨负电极表面上的牺牲减少来少于生命。另一方面,这种添加剂可以通过清除HF稳定电解质。同时,掺入的leidfob添加剂对正电极表面上的相互作用层具有正影响,并且最终导致LINI_(0.5)MN_(1.5)O_(4)电极的循环稳定性和速率能力改善了循环稳定性和速率能力在5 V的高截止电压下,数据表明,LidfoB添加剂不仅具有优异的石墨兼容性,而且还可以显着提高高压尖晶石LINI_(0.5)MN_(1.5)o_(4)正电极的电化学特性,确认其潜在作为预期的多功能添加剂,在高能容量锂离子电池(LIBS)中为5V氟化电解质。

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