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Nanoscale, tunable, and highly sensitive biosensor utilizing hyperbolic metamaterials in the near-infrared range

机译:纳米级,可调谐和高度敏感的生物传感器利用近红外范围内的双曲超材料

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摘要

A plethora of research in recent years has been reported on biosensing in the surface plasmon resonant systems. However, very little research has reported a tunable and highly sensitive biosensor in a nanoscale platform. In this regard, we propose a nanoscale hyperbolic metamaterial (HMM)-based prism coupled waveguide sensor (PCWS) in the near-infrared range. The HMM layer makes up one of the constituents of the PCWS comprised of a periodically arranged assembly of silver nanostrips. The structure is numerically simulated by the finite difference time domain method. It is demonstrated that the sensitivity of the reflected light can be tuned through the refractive index (RI) of the solution. Moreover, the effects of alteration of constituents of PCWS on the sensitivity have been analyzed. Results show that the sensitivity of PCWS can be harnessed by altering the thickness, slant angle of HMM layer, volume fraction (f) of metal in the HMM layer, and the incidence angle of light. For this purpose, the structure is numerically simulated by the finite difference time domain method. In the optimum design of the proposed sensor, the maximum value of sensitivity is achieved as high as S = 3450 nm/refractive index unit with theta = 10 degrees and phi = 10 degrees and a metamaterial thickness of 250 nm. Moreover, the structure has a nanoscale footprint of 600 nm x 400 nm x 200 nm. (C) 2018 Optical Society of America
机译:近年来,近年来的一项研究已经在表面等离子体谐振系统中进行了生物传感。然而,很少的研究报告了纳米级平台中的可调和高度敏感的生物传感器。在这方面,我们在近红外范围内提出了一种纳米级双曲金超材料(HMM)的棱镜耦合波导传感器(PCW)。 HMM层构成PCW的一个组成部分,包括周期性地布置的银纳米纳秒组装。通过有限差分时域法在数值模拟结构。结果证明,可以通过溶液的折射率(RI)调谐反射光的灵敏度。此外,已经分析了PCWS成分改变对敏感性的影响。结果表明,通过改变HMM层中金属的厚度,倾斜角,金属的体积分数(F)和光的厚度,可以利用PCW的灵敏度,以及光的入射角。为此目的,通过有限差分时域方法进行数值模拟结构。在所提出的传感器的最佳设计中,敏感性的最大值高达S = 3450nm /折射率单元,θ= 10度,PHI = 10度,超级材料厚度为250nm。而且,该结构具有600nm x 400nm x 200nm的纳米级占地面积。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第31期|共8页
  • 作者单位

    COMSATS Univ Islamabad Dept Elect &

    Comp Engn Sahiwal Campus Islamabad Pakistan;

    Lorestan Univ Dept Elect Engn Khoram Abbad Iran;

    Quaid I Azam Univ Dept Elect Islamabad Pakistan;

    COMSATS Univ Islamabad Dept Mech Engn Sahiwal Campus Islamabad Pakistan;

    COMSATS Univ Islamabad Dept Elect &

    Comp Engn Sahiwal Campus Islamabad Pakistan;

    Lorestan Univ Dept Elect Engn Khoram Abbad Iran;

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