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Long-term air-stable Au doping of graphene by layer-by-layer assembly with graphene oxide for flexible transparent electrodes

机译:通过将逐层组件与石墨烯组装具有用于柔性透明电极的石墨烯组件的长期空气稳定的Au掺杂

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摘要

In order to realize the most suitable hybrid structure for air-stable graphene-based transparent and flexible electrodes, we systematically compared graphene oxide (GO)/Au/graphene and graphene/Au/GO hybrid films fabricated by layer-by-layer assembly. The sheet resistance of graphene/Au/GO was proportional to the concentration of AuCl3 (1-5 mg/ml), which can be understood by a significant blue-shift in the G-band associated with the phonon stiffening. The size and density of formed Au nanoparticles strongly influenced their reduction reaction, which is a crucial factor for maximizing the doping effects. The optimized optical transmittance and sheet resistance of GO/Au/graphene were 94.9% and 198 +/- 29 Ohm/sq, respectively. Furthermore, the hybrid films revealed stable doping effects (sheet resistance variation: 23-55%) against ambient conditions after 1 month. The variation in sheet resistance for GO/Au/graphene hybrid films corresponds to 30% with a bending radius of 10 mm after repeated bending tests (bending cycles of 10(5)). (C) 2017 Elsevier Ltd. All rights reserved.
机译:为了实现用于空气稳定石墨烯的透明和柔性电极的最合适的混合结构,我们系统地比较了通过层逐个组件制造的石墨烯(GO)/ Au /石墨烯和石墨烯/ Au / Go混合膜。石墨烯/ Au / Go的薄层电阻与AuCl3(1-5mg / ml)的浓度成比例,这可以通过与与声子加固相关的G波段中的显着的蓝色偏移来理解。形成的Au纳米颗粒的尺寸和密度强烈影响其还原反应,这是最大化掺杂效果的关键因素。 Go / Au / Graphene的优化光学透射率和薄层电阻分别为94.9%和198 +/- 29欧姆/ SQ。此外,混合膜在1个月后揭示了稳定的掺杂效应(薄层电阻变化:23-55%)。用于去/ Au /石墨烯杂化膜的薄层电阻的变化对应于30%,在重复弯曲试验后10mm的弯曲半径(弯曲循环为10(5))。 (c)2017 Elsevier Ltd.保留所有权利。

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