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首页> 外文期刊>Sensors and Actuators, A. Physical >Nanoscale torsion-free photonic crystal pressure sensor with ultra-high sensitivity based on side-coupled piston-type microcavity
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Nanoscale torsion-free photonic crystal pressure sensor with ultra-high sensitivity based on side-coupled piston-type microcavity

机译:基于侧耦合活塞型微腔的超高灵敏度纳米级无扭转光子晶体压力传感器

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摘要

A novel nanoscale torsion-free photonic crystal pressure sensor is demonstrated and its performances are theoretically investigated. The proposed sensor device consists of PhC waveguide and side-coupled piston-type microcacity. By using finite-element method (FEM) and three dimensional finite difference time domain technologies (3D-FDTD), the dependence of optical properties of resonant mode on the applied strain is systematically studied. Linear relationships between the applied strain and the shift in the resonant wavelength of the cavity are obtained. The pressure sensitivity as high as 0.50 nmN is observed. The minimum detectable pressure variation is estimated to be as small as 0.68 nN. Compared to ring-resonator based pressure sensor achieved an equivalent sensitivity, the sensor size presented in this work is reduced by three orders of magnitude. In addition, a flexible design of pressure sensor array is demonstrated in the end.
机译:演示了一种新型的纳米级无扭转光子晶体压力传感器,并对其性能进行了理论研究。拟议的传感器设备包括PhC波导和侧耦合活塞式微腔。通过使用有限元方法(FEM)和三维有限差分时域技术(3D-FDTD),系统地研究了共振模的光学特性对所施加应变的依赖性。获得所施加的应变与腔的谐振波长的偏移之间的线性关系。观察到高达0.50 nm / nN的压力敏感性。最小可检测压力变化估计小至0.68 nN。与基于环形谐振器的压力传感器相比,具有相同的灵敏度,这项工作中提出的传感器尺寸减小了三个数量级。此外,最后展示了压力传感器阵列的灵活设计。

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