Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes, National Laboratory of Mineral Materials, School of Materials Science and Technology, China University of Geosciences, Beijing, 100083, PR China.
Nanoscale. 2017 Nov 30;9(46):18552-18560. doi: 10.1039/c7nr06476d.
A facile solution-based method was developed to combine the advantage of amorphous nanoscale red P sheets and highly conductive graphene, forming a high-performance P/graphene composite anode for advanced lithium ion batteries. Graphene can be easily expanded into a 3D framework in solution with rich interior porosity and abundant adsorption points, which enables a large percentage of red P to be loaded and form a uniform P/graphene hybrid structure. The nanoscale and amorphous features of red P effectively reduce the volume expansion and mechanical stress within individual P sheets, thereby alleviating P pulverization during cycling. The well dispersed graphene serves as a buffer layer to accommodate the volume expansion and adsorb the stress during electrochemical reactions, thereby maintaining a robust electrode structure. Besides, the highly conductive graphene greatly enhances the ionic/electronic conductivity of the electrode, which favors efficient redox reactions and high P utilization. Based on the superior composite structure, the potentials of both components can be fully exerted, resulting in excellent electrochemical performance. The P/graphene electrode delivered a high reversible capacity of 1286 mA h g based on the weight of the composite after 100 cycles at 200 mA g. Even at a high current density of 1000 mA g, the composite electrode exhibits a high capacity of 1125 mA h g, revealing its potential as a high-performance P-carbon composite anode for advanced lithium ion batteries.
一种简便的溶液法被开发用于结合非晶态纳米红磷片和高导电性石墨烯的优势,形成用于先进锂离子电池的高性能磷/石墨烯复合阳极。石墨烯在溶液中很容易扩展成具有丰富内部孔隙率和丰富吸附点的 3D 框架,这使得大量的红磷得以负载并形成均匀的磷/石墨烯杂化结构。红磷的纳米级和非晶态特征有效地减少了单个磷片中的体积膨胀和机械应力,从而缓解了循环过程中的磷粉化。分散良好的石墨烯作为缓冲层,可以容纳体积膨胀并在电化学反应中吸附应力,从而保持坚固的电极结构。此外,高导电性的石墨烯极大地提高了电极的离子/电子导电性,有利于高效的氧化还原反应和高磷利用率。基于优越的复合结构,可以充分发挥两个组件的潜力,从而实现出色的电化学性能。在 200 mA g 的电流密度下经过 100 次循环后,基于复合材料的重量,磷/石墨烯电极表现出 1286 mA h g 的高可逆容量。即使在 1000 mA g 的高电流密度下,复合电极也表现出 1125 mA h g 的高容量,表明其作为用于先进锂离子电池的高性能磷-碳复合阳极的潜力。