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Towards a Highly Sensitive Pressure Sensor Using an Infrared (IR) Laser and a Two-dimensional (2-D) Photonic Crystal Waveguide

机译:使用红外 (IR) 激光器和二维 (2-D) 光子晶体波导实现高灵敏度压力传感器

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摘要

We propose a detailed analysis of a novel two-dimensional (2-D) photonic crystal (PhC) structure to envisage a highly sensitive pressure sensor in the infrared (IR) wavelength range by using an IR laser source. The sensing performances are evaluated by separately designing the proposed structure on InAs and ZnO substrate. The sensor configuration is realized with the arrangement of circular air holes in the triangular lattice configuration having a central line defect. The mainstay of the present research is to study the variation in photonic band gap (PBG) using plane wave expansion (PWE) technique with respect to change in pressure from 1 to 5 GPa across the structure. In addition to this, the transmission spectrum is investigated for different applied pressures in both the InAs and ZnO-based structures. Vital sensing performance like sensitivity and quality factors are computed by analysing the shifting nature of the resonant mode wavelength in the transmission spectrum. We observed a remarkable sensitivity of 75 and 40 nm/GPa for the proposed InAs-based and ZnO-based PhC sensor, respectively. Also, the effect of different normalized air hole radius is thoroughly studied on the variation in the band gap size. A comparative analysis of the sensor outcomes with respect to the previously published works is presented to prove the superiority of the present research.
机译:我们提出了一种新型二维(2-D)光子晶体(PhC)结构的详细分析,以设想使用红外激光源在红外(IR)波长范围内的高灵敏度压力传感器。通过分别设计InAs和ZnO衬底上的结构来评估传感性能。传感器配置是通过在具有中心线缺陷的三角形晶格结构中布置圆形气孔来实现的。本研究的主要内容是利用平面波膨胀(PWE)技术研究光子带隙(PBG)在结构中压力从1到5 GPa的变化。除此之外,还研究了InAs和ZnO基结构中不同施加压力的透射光谱。通过分析透射光谱中谐振模式波长的偏移特性来计算灵敏度和质量因子等重要传感性能。我们观察到,所提出的基于InAs和ZnO的PhC传感器的灵敏度分别为75和40 nm/GPa。此外,还深入研究了不同归一化气孔半径对带隙尺寸变化的影响。通过对传感器结果与先前发表的研究成果进行比较分析,以证明本研究的优越性。

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