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通过在垂直排列的微通道中调节锂电镀/剥离来实现稳定的锂金属阳极。

Stable Li Metal Anodes via Regulating Lithium Plating/Stripping in Vertically Aligned Microchannels.

机构信息

CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences (CAS), Beijing, 100190, P. R. China.

School of Chemistry and Chemical Engineering, University of Chinese Academy of Sciences (CAS), Beijing, 100049, P. R. China.

出版信息

Adv Mater. 2017 Oct;29(40). doi: 10.1002/adma.201703729. Epub 2017 Sep 11.

Abstract

Li anodes have been rapidly developed in recent years owing to the rising demand for higher-energy-density batteries. However, the safety issues induced by dendrites hinder the practical applications of Li anodes. Here, Li metal anodes stabilized by regulating lithium plating/stripping in vertically aligned microchannels are reported. The current density distribution and morphology evolution of the Li deposits on porous Cu current collectors are systematically analyzed. Based on simulations in COMSOL Multiphysics, the tip effect leads to preferential deposition on the microchannel walls, thus taking full advantage of the lightening rod theory of classical electromagnetism for restraining growth of Li dendrites. The Li anode with a porous Cu current collector achieves an enhanced cycle stability and a higher average Coulombic efficiency of 98.5% within 200 cycles. In addition, the resultant LiFePO /Li full battery demonstrates excellent rate capability and stable cycling performance, thus demonstrating promise as a current collector for high-energy-density, safe rechargeable Li batteries.

摘要

近年来,由于对高能量密度电池的需求不断增加,锂金属负极得到了迅速发展。然而,枝晶引起的安全问题阻碍了锂金属负极的实际应用。本工作报道了一种通过调控垂直排列微通道中的锂电镀/剥离来稳定锂金属负极的方法。系统分析了多孔铜集流体上锂沉积的电流密度分布和形貌演化。基于 COMSOL Multiphysics 的模拟,尖端效应导致优先在微通道壁上沉积,从而充分利用经典电磁学的避雷针理论来抑制锂枝晶的生长。采用多孔铜集流体的锂金属负极在 200 次循环内实现了增强的循环稳定性和高达 98.5%的平均库仑效率。此外,所得的 LiFePO4/Li 全电池表现出优异的倍率性能和稳定的循环性能,因此有望成为高能、安全的可充电 Li 电池的集流体。

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