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Graphene-based mid-infrared biosensor

机译:基于石墨烯的中红外生物传感器

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摘要

We propose a new graphene-based metamaterial biosensor to achieve tunable plasmon-induced transparency in the mid-infrared (mid-IR) regime. The structure consists of a graphene sheet with three cut-out strips that has been located on a substrate. It is shown that the plasmonically induced transparency (PIT) can be realized by breaking the symmetry of the structure in the normal incidence and also changing the polarization of the incident light in the symmetric case. By optimizing the physical parameters of the antennas, an extremely strong optical sensing coefficient (about 99%) is observed in the mid-IR frequency range based on the PIT effect, which is much larger than that of related previous studies. More importantly, we observed a blueshift in the transparency window through the increase of the gate voltage of the graphene's chemical potential. The transparency window strongly depends on the physical parameters of the substrate and filling material. Furthermore, it is found that the biosensing application of the proposed structure is highly dependent on inserting an ultra-thin buffer layer between the graphene and substrate layer, leading to a tunable PIT in the mid-IR regime. (C) 2017 Optical Society of America
机译:我们提出了一种新的基于石墨烯的超材料生物传感器,以实现中红外(中IR)制度的可调谐等离子体诱导的透明度。该结构由具有三个已经位于衬底上的三个切口条带的石墨烯片组成。结果表明,通过在正常发射中破坏结构的对称性并且还改变对称情况下的入射光的偏振来实现相位透明度(坑)。通过优化天线的物理参数,基于凹坑效应,在中红外频率范围内观察到极强的光学感测系数(约99%),这远远大于相关先前研究的频率。更重要的是,我们在透明窗口中观察到了透明度窗口的平坦,从石墨烯的化学势的栅极电压的增加。透明度窗口强烈取决于基板和填充材料的物理参数。此外,发现所提出的结构的生物传感施加高度依赖于在石墨烯和衬底层之间插入超薄缓冲层,导致中红外区域中的可调坑。 (c)2017年光学学会

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