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Optical properties of fluidic defect states in one-dimensional graphene-based photonic crystal biosensors: visible and infrared Hall regime sensing

机译:流体缺陷状态在一维石墨烯的光子晶体生物传感器中的光学特性:可见和红外霍尔政权感应

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摘要

Advances in biotechnology are outpacing studies into the use of graphene in photonic biosensors due to its peculiar optical properties and the successful progress in the nanoscale integration of photonic crystals. Moreover, going beyond the usual Dirac cone approximation for graphene introduces nonlinear effects in graphene's optics. In this work, by the use of the transfer matrix method, we investigate the effect of hopping parameter on the chemical and biosensing performance of a 1D defective photonic biosensor with a micro/nanofluidic channel as a central defect cavity for biological fluids and gas molecules to flow while interacting with two graphene sheet deposited on silicon dioxide layers of the device. As low-weight molecules absorption on graphene's surface could affect hopping energy of graphene which plays a significant role in its optical conductivity obtained from the tight-binding model for the visible range, it will serve as a promising tool for the detection of gas and other analytes. We also examine the sensitivity of the defect modes to the changes of the refractive index of the biological fluids under the influence of quantum Hall situation for graphene in terahertz (THz) regime. It is revealed that two defective modes with relatively different sensing properties are emerged within the band stop of the device. The results of this study are not reported elsewhere to the best of our knowledge.
机译:由于其特殊的光学性质和光子晶体纳米级整合的纳米级整合,消除生物技术的进展在光子生物传感器中,在光子生物传感器中的使用和光子晶体的纳米级整合的成功进展。此外,超出了石墨烯的通常Dirac锥形近似引入了石墨烯光学中的非线性效应。在这项工作中,通过使用转移矩阵方法,我们研究了跳跃参数对1D缺陷光子生物传感器的化学和生物传感性能的效果,其具有微/纳米流体通道作为生物流体和气体分子的中央缺陷腔流动,同时与沉积在装置的二氧化硅层上的两个石墨烯片相互作用。由于石墨烯表面上的低重量分子可能影响石墨烯的跳跃能量,这在从粘合范围的紧密结合模型中获得的光导率起到显着作用,它将作为检测气体和其他的有希望的工具分析物。我们还在太赫兹(THZ)制度中的量子霍尔情况下,研究了缺陷模式对生物流体折射率变化的敏感性。据揭示,在装置的带停止内出现了具有相对不同的感测性质的两种缺陷模式。本研究的结果未在我们所知的情况下报告。

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