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使用硅纳米线的高性能锂电池阳极。

High-performance lithium battery anodes using silicon nanowires.

作者信息

Chan Candace K, Peng Hailin, Liu Gao, McIlwrath Kevin, Zhang Xiao Feng, Huggins Robert A, Cui Yi

出版信息

Nat Nanotechnol. 2008 Jan;3(1):31-5. doi: 10.1038/nnano.2007.411. Epub 2007 Dec 16.

Abstract

There is great interest in developing rechargeable lithium batteries with higher energy capacity and longer cycle life for applications in portable electronic devices, electric vehicles and implantable medical devices. Silicon is an attractive anode material for lithium batteries because it has a low discharge potential and the highest known theoretical charge capacity (4,200 mAh g(-1); ref. 2). Although this is more than ten times higher than existing graphite anodes and much larger than various nitride and oxide materials, silicon anodes have limited applications because silicon's volume changes by 400% upon insertion and extraction of lithium which results in pulverization and capacity fading. Here, we show that silicon nanowire battery electrodes circumvent these issues as they can accommodate large strain without pulverization, provide good electronic contact and conduction, and display short lithium insertion distances. We achieved the theoretical charge capacity for silicon anodes and maintained a discharge capacity close to 75% of this maximum, with little fading during cycling.

摘要

人们对开发具有更高能量容量和更长循环寿命的可充电锂电池有着浓厚兴趣,这些电池可应用于便携式电子设备、电动汽车和植入式医疗设备。硅是锂电池一种有吸引力的负极材料,因为它具有低放电电位和已知最高的理论充电容量(4200 mAh g⁻¹;参考文献2)。尽管这比现有的石墨负极高出十多倍,且比各种氮化物和氧化物材料大得多,但硅负极的应用有限,因为硅在锂的嵌入和脱嵌过程中体积变化达400%,这会导致粉化和容量衰减。在这里,我们表明硅纳米线电池电极能够规避这些问题,因为它们能够承受大应变而不发生粉化,提供良好的电子接触和传导,并显示出短的锂嵌入距离。我们实现了硅负极的理论充电容量,并在循环过程中保持接近该最大值75%的放电容量,且几乎没有衰减。

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