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三维多孔磷酸钴纳米立方体封装在石墨烯气凝胶中作为一种高级阳极,具有高库仑效率,用于高能锂离子电池。

Three-Dimensional Porous Cobalt Phosphide Nanocubes Encapsulated in a Graphene Aerogel as an Advanced Anode with High Coulombic Efficiency for High-Energy Lithium-Ion Batteries.

机构信息

Institute for Superconducting and Electronic Materials, School of Mechanical, Materials and Mechatronics Engineering , University of Wollongong , North Wollongong , New South Wales 2500 , Australia.

ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, Australian Institute of Innovative Materials , University of Wollongong , North Wollongong , New South Wales 2522 , Australia.

出版信息

ACS Appl Mater Interfaces. 2019 Feb 6;11(5):5373-5379. doi: 10.1021/acsami.8b19613. Epub 2019 Jan 25.

Abstract

An ingeniously designed porous structure can synergistically optimize the desired properties and maximize the advantages of a material as an electrode for a high-performance energy storage system. The active material with a porous nanostructure could reduce the ion diffusion path and buffer the strain caused by the volume changes during cycling. Furthermore, combining the active material with a three-dimensional (3D) graphene aerogel (GA) matrix is an ideal way to maintain the structural integrity, improve the conductivity, and overcome the aggregation problem of the nanomaterials. Herein, we adopted a facile template-based strategy to derive a composite of 3D hierarchically porous cobalt phosphide nanocubes with a graphene aerogel (CoP@GA). The as-prepared CoP@GA features porous cobalt phosphide nanocubes that are firmly encapsulated and uniformly distributed in the well-defined graphene aerogel skeleton. Benefiting from the hierarchical porosity, structural integrity, and conductive network, the CoP@GA electrode manifests an ultrahigh initial Coulombic efficiency (88.6%), outstanding lithium storage performance in terms of excellent cycling performance (805.3 mAh·g after 200 cycles at 200 mA·g), superior high-energy performance (351.8 mAh·g after 4000 cycles at 10 A·g), and exceptional rate capability. Moreover, this synthesis protocol could be an instructive precedent for fabricating transition-metal-phosphide-based 3D porous composites with excellent electrochemical performances.

摘要

巧妙设计的多孔结构可以协同优化所需性能,并最大限度地发挥材料作为高性能储能系统电极的优势。具有多孔纳米结构的活性材料可以减少离子扩散路径,并缓冲循环过程中体积变化引起的应变。此外,将活性材料与三维(3D)石墨烯气凝胶(GA)基体结合是保持结构完整性、提高导电性和克服纳米材料团聚问题的理想方法。在此,我们采用了一种简便的基于模板的策略,制备了 3D 分级多孔钴磷纳米立方体形貌与石墨烯气凝胶(CoP@GA)的复合材料。所制备的 CoP@GA 具有多孔钴磷纳米立方体形貌,它们被牢固地包裹并均匀分布在明确定义的石墨烯气凝胶骨架中。得益于分级多孔性、结构完整性和导电网络,CoP@GA 电极表现出超高的初始库仑效率(88.6%)、出色的循环性能(在 200 mA·g 下 200 次循环后为 805.3 mAh·g)、卓越的高能量性能(在 10 A·g 下 4000 次循环后为 351.8 mAh·g)和出色的倍率性能。此外,该合成方案可为制备具有优异电化学性能的基于过渡金属磷化物的 3D 多孔复合材料提供一个有益的先例。

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