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Facile fabrication of properties-controllable graphene sheet

机译:方便地制造可控性能的石墨烯片

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摘要

Graphene has been received a considerable amount of attention as a transparent conducting electrode (TCE) which may be able to replace indium tin oxide (ITO) to overcome the significant weakness of the poor flexibility of ITO. Given that graphene is the thinnest 2-dimensional (2D) material known, it shows extremely high flexibility, and its lateral periodic honeycomb structure of sp2-bonded carbon atoms enables ~2.3% of incident light absorption per layer. However, there is a trade-off between the electrical resistance and the optical transmittance, and the fixed absorption rate in graphene limits is use when fabricating devices. Therefore, a more efficient method which continuously controls the optical and electrical properties of graphene is needed. Here, we introduce a method which controls the optical transmittance and the electrical resistance of graphene through various thicknesses of the top Cu layers with a Cu/Ni metal catalyst structure used to fabricate a planar mesh pattern of single and multi-layer graphene. We exhibit a continuous transmittance change from 85% (MLG) to 97.6% (SLG) at an incident light wavelength of 550 nm on graphene samples simultaneously grown in a CVD quartz tube. We also investigate the relationships between the sheet resistances.
机译:石墨烯作为透明导电电极(TCE)已经受到相当多的关注,它可以代替氧化铟锡(ITO)来克服ITO柔韧性差的明显缺点。鉴于石墨烯是已知的最薄的二维(2D)材料,它显示出极高的柔韧性,并且其sp 2 键合的碳原子的横向周期性蜂窝结构使得每吸收约2.3%的入射光层。然而,在电阻和光学透射率之间需要权衡,并且在制造装置时使用石墨烯极限的固定吸收率。因此,需要一种更有效的方法来连续控制石墨烯的光学和电学性质。在这里,我们介绍一种方法,该方法通过使用用于制造单层和多层石墨烯的平面网格图案的Cu / Ni金属催化剂结构,通过顶层Cu的各种厚度来控制石墨烯的透光率和电阻。在同时在CVD石英管中生长的石墨烯样品上,在550 nm的入射光波长下,我们展现出从85%(MLG)到97.6%(SLG)的连续透射率变化。我们还研究了薄层电阻之间的关系。

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