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首页> 外文期刊>Energy Technology: Generation,Conversion,Storage,Distribution >Vacuum-Dried 3D Holey Graphene Frameworks Enabling High Mass Loading and Fast Charge Transfer for Advanced Batteries
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Vacuum-Dried 3D Holey Graphene Frameworks Enabling High Mass Loading and Fast Charge Transfer for Advanced Batteries

机译:真空干燥的3D HOLY石墨烯框架,为先进电池提供高批量装载和快速充电转移

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摘要

Monolithic 3D graphene frameworks (GFs) electrode materials have exhibited the great potential for energy storage devices. However, most approaches for fabricating 3D GF require expensive and sophisticated drying techniques, and the current achieved 3D GF electrodes usually hold a relatively low mass loadings of the active materials with low areal capacity, which is not satisfactory for practical application. Herein, a convenient, economic, and scalable drying approach is developed to fabricate 3D holey GFs (HGFs) by a vacuum-induced drying (VID) process for the first time. This binder-free 3D HGF electrode with high mass loading can obtain extraordinary electrochemical performance for lithium-ion batteries (LIBs) due to the 3D holey graphene network owning a highly interconnected hierarchical porous structure for fast charge and ion transport. The HGF electrode with high mass loading of 4mgcm(-2) exhibits superior rate performance and delivers an areal capacity as high as 5mAhcm(-2) under the current density of 8mAcm(-2) even after 2000 cycles, considerably outperforming those of state-of-the-art commercial anodes and some representative anodes in other studies. This facile drying approach and robust realization of high areal capacity represent a critical step for 3D graphene-based electrode materials toward practical electrochemical energy storage devices.
机译:单片3D石墨烯框架(GFS)电极材料表现出储能装置的巨大潜力。然而,制造3D GF的大多数方法需要昂贵和复杂的干燥技术,并且电流达到的3D GF电极通常以低的面积容量保持相对低的质量载荷,这对于实际应用是不令人满意的。这里,开发了一种方便,经济和可扩展的干燥方法,以通过第一次通过真空诱导的干燥(VID)方法制造3D HOLY GFS(HGF)。由于具有高度互连的分层多孔结构的3D多孔石墨烯网络,可以获得具有高质量负荷的可粘合剂3D HGF电极,可以获得用于锂离子电池(LIBS)的非凡的电化学性能。具有高批量负载4mgcm(-2)的HGF电极表现出优异的速率性能,并且即使在2000次循环之后,在8macm(-2)的电流密度下,高度为5mAhcm(-2)的面积容量也能够大大优于状态优于状态 - 在其他研究中 - 艺术商业阳极和一些代表性阳极。这种容纳的易于干燥方法和高面积能的鲁棒实现代表了基于3D石墨烯的电极材料朝向实际电化学能量存储装置的关键步骤。

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