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一种用于锂离子电池的 3.6V 锂基氟化硫酸盐嵌入正极。

A 3.6 V lithium-based fluorosulphate insertion positive electrode for lithium-ion batteries.

机构信息

LRCS-UMR 6007-Université de Picardie Jules Verne, 80039 Amiens, France.

出版信息

Nat Mater. 2010 Jan;9(1):68-74. doi: 10.1038/nmat2590. Epub 2009 Nov 29.

Abstract

Li-ion batteries have contributed to the commercial success of portable electronics, and are now in a position to influence higher-volume applications such as plug-in hybrid electric vehicles. Most commercial Li-ion batteries use positive electrodes based on lithium cobalt oxides. Despite showing a lower voltage than cobalt-based systems (3.45 V versus 4 V) and a lower energy density, LiFePO(4) has emerged as a promising contender owing to the cost sensitivity of higher-volume markets. LiFePO(4) also shows intrinsically low ionic and electronic transport, necessitating nanosizing and/or carbon coating. Clearly, there is a need for inexpensive materials with higher energy densities. Although this could in principle be achieved by introducing fluorine and by replacing phosphate groups with more electron-withdrawing sulphate groups, this avenue has remained unexplored. Herein, we synthesize and show promising electrode performance for LiFeSO(4)F. This material shows a slightly higher voltage (3.6 V versus Li) than LiFePO(4) and suppresses the need for nanosizing or carbon coating while sharing the same cost advantage. This work not only provides a positive-electrode contender to rival LiFePO(4), but also suggests that broad classes of fluoro-oxyanion materials could be discovered.

摘要

锂离子电池促成了便携式电子产品的商业成功,现在正处于影响更高容量应用的地位,如插电式混合动力汽车。大多数商业锂离子电池使用基于锂钴氧化物的正极。尽管与钴基系统相比,LiFePO4的电压较低(3.45V 对 4V),能量密度也较低,但由于高容量市场的成本敏感性,它已成为一种有前途的竞争者。LiFePO4还表现出固有的低离子和电子传输性,需要纳米化和/或碳涂层。显然,需要具有更高能量密度的廉价材料。虽然这在理论上可以通过引入氟并将磷酸盐基团用更具吸电子性的硫酸盐基团取代来实现,但这条途径仍未得到探索。在此,我们合成并展示了 LiFeSO4F 的有前途的电极性能。与 LiFePO4相比,该材料的电压略高(3.6V 对 Li),同时抑制了纳米化或碳涂层的需求,同时保持相同的成本优势。这项工作不仅提供了一种与 LiFePO4竞争的正极候选材料,还表明可以发现广泛的氟代氧阴离子材料。

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