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用于集流体的铜纳米颗粒的低电流场辅助组装

Low-current field-assisted assembly of copper nanoparticles for current collectors.

作者信息

Liu Lehao, Choi Bong Gill, Tung Siu On, Hu Tao, Liu Yajie, Li Tiehu, Zhao Tingkai, Kotov Nicholas A

机构信息

School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, Shaanxi, P. R. China.

出版信息

Faraday Discuss. 2015;181:383-401. doi: 10.1039/c4fd00263f.

Abstract

Current collectors are essential features of batteries and many other electronic devices being responsible for efficient charge transport to active electrode materials. Three-dimensional (3D), high surface area current collectors considerably improve the performance of cathodes and anodes in batteries, but their technological implementation is impeded by the complexity of their preparation, which needs to be simple, fast, and energy efficient. Here we demonstrate that field-stimulated assembly of ∼3 nm copper nanoparticles (NPs) enables the preparation of porous Cu NP films. The use of NP dispersions enables 30× reduction of the deposition current for making functional 3D coatings. In addition to high surface area, lattice-to-lattice connectivity in the self-assembly of NPs in 3D structures enables fast charge transport. The mesoscale dimensions of out-of-plane features and the spacing between them in Cu films made by field-stimulated self-assembly of NPs provides promising morphology for current collection in lithium ion batteries (LIBs). Half-cell electrochemical models based on self-assembled films show improved specific capacity, total capacity, and cycling performance compared to traditional flat and other 3D current collectors. While integration of active electrode material into the 3D topography of the current collector needs to be improved, this study indicates that self-assembled NP films represent a viable manufacturing approach for 3D electrodes.

摘要

集流体是电池和许多其他电子设备的关键部件,负责将电荷高效传输至活性电极材料。三维(3D)、高表面积的集流体可显著提升电池中阴极和阳极的性能,但其技术应用因制备过程复杂而受阻,制备过程需简单、快速且节能。在此,我们证明了通过场刺激组装约3纳米的铜纳米颗粒(NP)能够制备多孔铜NP薄膜。使用NP分散体可使制备功能性3D涂层的沉积电流降低30倍。除了高表面积外,3D结构中NP自组装过程中的晶格间连通性可实现快速电荷传输。通过场刺激自组装NP制备的铜薄膜中,面外特征的中尺度尺寸及其间距为锂离子电池(LIB)中的集流提供了有前景的形态。基于自组装薄膜的半电池电化学模型显示,与传统的平面和其他3D集流体相比,其比容量、总容量和循环性能均有所提升。虽然将活性电极材料集成到集流体的3D形貌中仍需改进,但本研究表明自组装NP薄膜是一种可行的3D电极制造方法。

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