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Facile Formation of a LiF-Carbon Layer as an Artificial Cathodic Electrolyte Interphase through Encapsulation of a Cathode with Carbon Monofluoride

机译:作为人造阴极电解质的外壳形成通过用碳单氟化碳的阴极封装来互相形成

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摘要

Lithium batteries that utilize a lithium anode and a high voltage cathode are highly required to meet the growing demand for electrification of transportation. High voltage lithium cobalt oxide (LiCoO_(2), LCO) can be a promising choice for lithium batteries with high energy and power. However, intrinsic structural instability at high voltages (>4.2 V) leads to significant capacity loss during the repeated cycles of charge–discharge. Herein, a simple and effective method has been proposed to prepare an artificial protective layer of LCO, enabling the LCO to achieve long-term cycle stability at 4.5 V. It is found that carbon monofluoride reacts with LCO via defluorination at 400 °C to form a LiF-C layer on LCO, which suppresses side reactions at the electrolyte/electrode interface. Moreover, the LiF-C layer plays a key role in not only facilitating charge transport but also restricting Co dissolution from the cathode. The Li//LiF-C coated LCO cells deliver an initial discharge capacity of 186 mAh g~(–1) at 0.1C and exhibit excellent cycling and rate performance: 161 mAh g~(–1) after 180 cycles (90% of the initial value at 0.5C) and 115 mAh g~(–1) at 10C (63.2% of the 0.1C capacity).
机译:为了满足日益增长的交通电气化需求,对使用锂阳极和高压阴极的锂电池提出了很高的要求。高压锂钴氧化物(LiCoO_2,LCO)是高能量、大功率锂电池的理想选择。然而,高电压(>4.2V)下的固有结构不稳定性会导致重复充放电循环期间的显著容量损失。本文提出了一种简单有效的方法来制备LCO的人工保护层,使LCO能够在4.5 V下实现长期循环稳定性。发现一氟化碳通过在400°C下脱氟与LCO反应,在LCO上形成LiF-C层,从而抑制电解质/电极界面处的副反应。此外,LiF-C层不仅在促进电荷传输方面起着关键作用,而且在限制来自阴极的Co溶解方面也起着关键作用。Li//LiF-C涂层LCO电池在0.1C下的初始放电容量为186 mAh g~(-1),并表现出优异的循环和速率性能:在180次循环(0.5C下为初始值的90%)后为161 mAh g~(-1),在10C下为115 mAh g~(-1)(0.1C容量的63.2%)。

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