Gaber Noha, Sabry Yasser M, Erfan Mazen, Marty Frédéric, Bourouina Tarik
Université Paris-Est, ESIEE Paris, ESYCOM EA 2552, 93162 Noisy-le-Grand, France.
Center for nanotechnology, Zewail City of Science and Technology, Sheikh Zayed District, 6th of October City 12588, Giza, Egypt.
Micromachines (Basel). 2018 Jan 31;9(2):54. doi: 10.3390/mi9020054.
This work reports a novel structure for a Fabry⁻Pérot micro cavity that combines the highest reported quality factor for an on-chip Fabry⁻Pérot resonator that exceeds 9800, and a very high sensitivity for an on-chip volume refractometer based on a Fabry⁻Pérot cavity that is about 1000 nm/refractive index unit (RIU). The structure consists of two cylindrical Bragg micromirrors that achieve confinement of the Gaussian beam in the plan parallel to the chip substrate, while for the perpendicular plan, external fiber rod lenses (FRLs) are placed in the optical path of the input and the output of the cavity. This novel structure overcomes number of the drawbacks presented in previous designs. The analyte is passed between the mirrors, enabling its detection from the resonance peak wavelengths of the transmission spectra. Mixtures of ethanol and deionized (DI)-water with different ratios are used as analytes with different refractive indices to exploit the device as a micro-opto-fluidic refractometer. The design criteria are detailed and the modeling is based on Gaussian-optics equations, which depicts a scenario closer to reality than the usually used ray-optics modeling.
这项工作报道了一种用于法布里-珀罗微腔的新型结构,该结构兼具片上法布里-珀罗谐振器所报道的最高品质因数(超过9800)以及基于法布里-珀罗腔的片上体积折射仪的极高灵敏度(约为1000纳米/折射率单位)。该结构由两个圆柱形布拉格微镜组成,可在与芯片衬底平行的平面内实现高斯光束的限制,而对于垂直平面,在腔的输入和输出光路上放置了外部光纤棒透镜(FRL)。这种新型结构克服了先前设计中存在的许多缺点。分析物在微镜之间通过,从而能够从透射光谱的共振峰波长检测到它。使用不同比例的乙醇和去离子(DI)水混合物作为具有不同折射率的分析物,将该器件用作微光流体折射仪。详细阐述了设计标准,并且建模基于高斯光学方程,与通常使用的光线光学建模相比,该方程描绘了更接近实际的情况。