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Optimization of One Dimensional Photonic Crystal Elliptical-Hole Low-Index Mode Nanobeam Cavities for On-Chip Sensing

机译:用于片上传感的一维光子晶体椭圆孔低折射率模式纳米束腔的优化

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摘要

We report the design of one dimensional photonic crystal nanobeam cavities with elliptical holes that is fully encapsulated in the water environment and can confine the light in the low index region. The proposed structure, based on the principle of gentle confinement of the electromagnetic field, is designed by tapering the width of the host photonic crystal waveguide away from the center of the cavity while keeping other parameters constant. With elliptical-hole low-index mode nanobeam cavities and tapered waveguide widths, through three dimensional finite-difference time-domain simulations, large band-gap and high reflectivity are achieved to confine the optical mode. Also, the electric field is confined in the elliptical holes, which helps to enhance the sensitivity. The simulation results demonstrate that we achieve the highest quality factor of when 15 taper segments and 15 additional mirror segments are placed on both sides of the host waveguide. A sensitivity of 390 nm/RIU (refractive index unit) and mode volume of 2.23 are achieved in the water environment, thus showing exceptionally good on-chip sensing properties with respect to high sensitivity, small footprints and masses.
机译:我们报告了带有椭圆孔的一维光子晶体纳米束腔的设计,该腔被完全封装在水环境中,并且可以将光限制在低折射率区域中。提出的结构基于对电磁场的温和限制原理,是通过使主光子晶体波导的宽度从腔的中心逐渐变细,同时保持其他参数不变来设计的。通过椭圆孔低折射率模式纳米束腔和锥形波导宽度,通过三维时域有限差分模拟,可以实现大的带隙和高反射率,从而限制了光学模式。而且,电场被限制在椭圆形孔中,这有助于提高灵敏度。仿真结果表明,当在主波导的两侧放置15个锥度段和15个附加镜面段时,我们可以获得最高的品质因数。在水环境中,可实现390 nm / RIU(折射率单位)的灵敏度和2.23的模量,因此就高灵敏度,较小的占位面积和质量而言,显示出异常出色的片上传感特性。

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