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Three-Dimensional Graphene Nano-Networks with High Quality and Mass Production Capability via Precursor-Assisted Chemical Vapor Deposition

机译:通过前体辅助化学气相沉积获得高质量和大规模生产能力的三维石墨烯纳米网络

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摘要

We report a novel approach to synthesize chemical vapor deposition-grown three-dimensional graphene nano-networks (3D-GNs) that can be mass produced with large-area coverage. Annealing of a PVA/iron precursor under a hydrogen environment, infiltrated into 3D-assembled-colloidal silicas reduces iron ions and generates few-layer graphene by precipitation of carbon on the iron surface. The 3D-GN can be grown on any electronic device-compatible substrate, such as Al2O3, Si, GaN, or Quartz. The conductivity and surface area of a 3D-GN are 52 S/cm and 1,025 m(2)/g, respectively, which are much better than the previously reported values. Furthermore, electrochemical double-layer capacitors based on the 3D-GN have superior supercapacitor performance with a specific capacitance of 245 F/g and 96.5% retention after 6,000 cycles due to the outstanding conductivity and large surface area. The excellent performance of the 3D-GN as an electrode for supercapacitors suggests the great potential of interconnected graphene networks in nano-electronic devices and energy-related materials.
机译:我们报告了一种新颖的方法来合成化学气相沉积生长的三维石墨烯纳米网络(3D-GNs),可以大规模生产具有大面积覆盖范围。在氢环境下对PVA /铁前体进行退火,渗入3D组装的胶体二氧化硅中会还原铁离子,并通过碳在铁表面上的沉淀生成几层石墨烯。 3D-GN可以在任何与电子设备兼容的基板上生长,例如Al2O3,Si,GaN或石英。 3D-GN的电导率和表面积分别为52 S / cm和1,025 m(2)/ g,这比以前报道的值要好得多。此外,基于3D-GN的电化学双层电容器具有出色的超级电容器性能,比电容量为245 F / g,并且在6,000次循环后具有96.5%的保留率,这归因于出色的电导率和大表面积。 3D-GN作为超级电容器电极的出色性能表明,互连的石墨烯网络在纳米电子设备和能源相关材料中具有巨大的潜力。

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