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具有高容量和环境空气兼容性的冶金锂化氧化硅阳极。

Metallurgically lithiated SiOx anode with high capacity and ambient air compatibility.

作者信息

Zhao Jie, Lee Hyun-Wook, Sun Jie, Yan Kai, Liu Yayuan, Liu Wei, Lu Zhenda, Lin Dingchang, Zhou Guangmin, Cui Yi

机构信息

Department of Materials Science and Engineering, Stanford University, Stanford, CA 94305;

Department of Materials Science and Engineering, Stanford University, Stanford, CA 94305; Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory, Menlo Park, CA 94025

出版信息

Proc Natl Acad Sci U S A. 2016 Jul 5;113(27):7408-13. doi: 10.1073/pnas.1603810113. Epub 2016 Jun 16.

Abstract

A common issue plaguing battery anodes is the large consumption of lithium in the initial cycle as a result of the formation of a solid electrolyte interphase followed by gradual loss in subsequent cycles. It presents a need for prelithiation to compensate for the loss. However, anode prelithiation faces the challenge of high chemical reactivity because of the low anode potential. Previous efforts have produced prelithiated Si nanoparticles with dry air stability, which cannot be stabilized under ambient air. Here, we developed a one-pot metallurgical process to synthesize LixSi/Li2O composites by using low-cost SiO or SiO2 as the starting material. The resulting composites consist of homogeneously dispersed LixSi nanodomains embedded in a highly crystalline Li2O matrix, providing the composite excellent stability even in ambient air with 40% relative humidity. The composites are readily mixed with various anode materials to achieve high first cycle Coulombic efficiency (CE) of >100% or serve as an excellent anode material by itself with stable cyclability and consistently high CEs (99.81% at the seventh cycle and ∼99.87% for subsequent cycles). Therefore, LixSi/Li2O composites achieved balanced reactivity and stability, promising a significant boost to lithium ion batteries.

摘要

困扰电池阳极的一个常见问题是,由于形成了固体电解质界面,在初始循环中锂的消耗量很大,随后在后续循环中逐渐损失。这就需要进行预锂化来弥补这种损失。然而,由于阳极电位较低,阳极预锂化面临着高化学反应性的挑战。此前的研究已经制备出了具有干燥空气稳定性的预锂化硅纳米颗粒,但在环境空气中无法稳定存在。在此,我们开发了一种一锅法冶金工艺,以低成本的SiO或SiO2为起始原料,合成LixSi/Li2O复合材料。所得复合材料由均匀分散在高度结晶的Li2O基体中的LixSi纳米域组成,即使在相对湿度为40%的环境空气中也具有优异的稳定性。这些复合材料很容易与各种阳极材料混合,以实现大于100%的高首次循环库仑效率(CE),或者本身作为一种优异的阳极材料,具有稳定的循环性能和始终如一的高CE(第七次循环时为99.81%,后续循环约为99.87%)。因此,LixSi/Li2O复合材料实现了反应活性和稳定性的平衡,有望显著推动锂离子电池的发展。

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本文引用的文献

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Why do batteries fail?电池为什么会失效?
Science. 2016 Feb 5;351(6273):1253292. doi: 10.1126/science.1253292.
8
Alloy negative electrodes for Li-ion batteries.用于锂离子电池的合金负极。
Chem Rev. 2014 Dec 10;114(23):11444-502. doi: 10.1021/cr500207g. Epub 2014 Nov 17.
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Electrolytes and interphases in Li-ion batteries and beyond.锂离子电池及其他电池中的电解质和界面
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