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通过使用装饰有ZnO颗粒的垂直排列石墨烯/碳纳米管通道来调控锂的电镀和剥离

Regulating Lithium Plating and Stripping by Using Vertically Aligned Graphene/CNT Channels Decorated with ZnO Particles.

作者信息

Chen Shang, Tao Kangjia, Chen Xin, Meng Yongqiang, Wang Manyun, Zhou Ji, Chen Chao, Wang Yulin, Nam Hui Kwun, Bielawski Christopher W, Geng Jianxin

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, 15 North Third Ring East Road, Chaoyang District, Beijing, 100029, P. R. China.

Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, 15 North Third Ring East Road, Chaoyang District, Beijing, 100029, P. R. China.

出版信息

Chemistry. 2021 Nov 11;27(63):15706-15715. doi: 10.1002/chem.202102510. Epub 2021 Oct 8.

Abstract

Lithium (Li) metal is regarded as the ultimate anode material for use in Li batteries due to its high theoretical capacity (3860 mA h g ). However, the Li dendrites that are generated during iterative Li plating/stripping cycles cause poor cycling stability and even present safety risks, and thus severely handicap the commercial utility of Li metal anodes. Herein, we describe a graphene and carbon nanotube (CNT)-based Li host material that features vertically aligned channels with attached ZnO particles (designated ZnO@G-CNT-C) and show that the material effectively regulates Li plating and stripping. ZnO@G-CNT-C is prepared from an aqueous suspension of Zn(OAc) , CNTs, and graphene oxide by using ice to template channel growth. ZnO@G-CNT-C was found to be mechanically robust and capable of guiding Li deposition on the inner walls of the channels without the formation of Li dendrites. When used as an electrode, the material exhibits relatively low polarization for Li plating, fast Li-ion diffusion, and high Coulombic efficiency, even over hundreds of Li plating/stripping cycles. Moreover, full cells prepared with ZnO@G-CNT-C as Li host and LiFePO as cathode exhibit outstanding performance in terms of specific capacity (155.9 mA h g at 0.5 C), rate performance (91.8 mA h g at 4 C), cycling stability (109.4 mA h g at 0.5 C after 800 cycles). The methodology described can be readily adapted to enable the use of carbon-based electrodes with well-defined channels in a wide range of contemporary applications that pertain to energy storage and delivery.

摘要

锂(Li)金属因其高理论容量(3860 mA h g )而被视为锂电池的理想负极材料。然而,在反复的锂电镀/剥离循环过程中产生的锂枝晶会导致循环稳定性差,甚至存在安全风险,从而严重阻碍了锂金属负极的商业应用。在此,我们描述了一种基于石墨烯和碳纳米管(CNT)的锂主体材料,其具有垂直排列的通道并附着有ZnO颗粒(命名为ZnO@G-CNT-C),并表明该材料能有效调节锂的电镀和剥离。ZnO@G-CNT-C由醋酸锌、碳纳米管和氧化石墨烯的水悬浮液通过使用冰模板通道生长法制备而成。发现ZnO@G-CNT-C具有机械稳定性,能够引导锂沉积在通道内壁而不形成锂枝晶。当用作电极时,即使在数百次锂电镀/剥离循环中,该材料也表现出相对较低的锂电镀极化、快速的锂离子扩散和高库仑效率。此外,以ZnO@G-CNT-C作为锂主体和磷酸铁锂作为正极制备的全电池在比容量(0.5 C时为155.9 mA h g )、倍率性能(4 C时为91.8 mA h g )、循环稳定性(800次循环后0.5 C时为109.4 mA h g )方面表现出色。所描述的方法可以很容易地适用于在与能量存储和传输相关的广泛现代应用中使用具有明确通道的碳基电极。

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