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Dielectric micro-resonator-based opto-mechanical systems for sensing applications.

机译:基于介电微谐振器的光电系统,用于传感应用。

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摘要

In recent years, whispering gallery mode (WGM), or morphology dependent optical resonances (MDR) of dielectric micro-resonators have attracted interest with proposed applications in a wide range of areas due to the high optical quality factors, Q, they can exhibit (reaching ~ 10.;9 for silica spheres). Micro-resonator WGMs have been used in applications that include those in spectroscopy, micro-cavity laser technology, optical communications (switching, filtering and multiplexing), sensors technologies and even chemical and biological sensing. The WGM of these dielectric micro-resonators are highly sensitive to morphological changes (such as the size, shape, or refractive index) of the resonance cavity and hence, can be tuned by causing a minute change in the physical condition of the surrounding. In this dissertation, we have been creating opto-mechanical systems, which at their most basic, are extraordinarily sensitive sensors. One of the ultimate goals of this dissertation is to develop sensors capable of detecting the extremely small electric field changes. To improve the performance of the sensors, we couple a polymer cantilever beam to a dielectric micro-resonator. The eventual use of such ultra sensitive electric filed sensors could include neural-machine interfaces for advanced prosthetics devices. The work presented here includes a basic analysis and experimental investigations of the electric field sensitivity and range of micro-resonators of several different materials and geometries followed by the electric field sensor design, testing, and characterization. Also, the effects of angular velocity on the WGM shifts of spherical micro-resonators are also investigated. The elastic deformation that is induced on a spinning resonator due to the centrifugal force may lead to a sufficient shift in the optical resonances and therefore interfering with its desirable operational sensor design. Furthermore, this principle could be used for the development of angular speed detection photonic sensors. In previous applications, the WGM shifts induced by the external effects were monitored by identifying and tracking individual resonance dip in the optical transmission spectrum. The success of the WGM sensors is strongly dependent on the precise and speeds tracking of the shifts of the resonant wavelengths. In this dissertation, we demonstrate the application of WGM micro-resonators for high-speed transient sensing (wide-bandwidth). To facilitate the use of the sensors for high-speed transient applications, we tune the interrogation laser using a harmonic rather than a ramp waveform and calibrate the laser response at various input frequencies and amplitudes using a Fabry-Perot interferometer. WGM shifts are tracked using a fast cross-correlation algorithm on the transmission spectra. We demonstrate dynamic force measurements up to 10 kHz using this approach. We also present a simple lumped-heat capacity thermal model to predict the laser's tuning response.
机译:近年来,由于高光学品质因数Q,电介质微谐振器的回音壁模式(WGM)或与形态相关的光学谐振(MDR)引起了人们的兴趣,并在许多领域提出了应用,它们可以表现出(二氧化硅球达到〜10.; 9)。微谐振器WGM已用于包括光谱学,微腔激光技术,光通信(切换,滤波和多路复用),传感器技术甚至化学和生物传感的应用。这些介电微谐振器的WGM对谐振腔的形态变化(例如大小,形状或折射率)高度敏感,因此可以通过引起周围物理条件的微小变化来对其进行调整。在本文中,我们一直在创建光机械系统,从最基本的角度来说,它们是非常灵敏的传感器。本文的最终目的之一是开发能够检测极小的电场变化的传感器。为了提高传感器的性能,我们将聚合物悬臂梁耦合到电介质微谐振器。这种超灵敏的电场传感器的最终使用可能包括用于高级修复设备的神经机器接口。此处介绍的工作包括对电场灵敏度和几种不同材料和几何形状的微谐振器范围的基础分析和实验研究,然后进行电场传感器的设计,测试和表征。此外,还研究了角速度对球形微谐振器的WGM位移的影响。由于离心力在旋转的谐振器上引起的弹性变形可能导致光学谐振发生足够的偏移,因此会干扰其理想的工作传感器设计。此外,该原理可用于角速度检测光子传感器的开发。在以前的应用中,通过识别和跟踪光透射谱中的各个共振倾角来监视由外部效应引起的WGM位移。 WGM传感器的成功很大程度上取决于谐振波长偏移的精确度和速度跟踪。在本文中,我们演示了WGM微谐振器在高速瞬态感应(宽带)中的应用。为了方便将传感器用于高速瞬态应用,我们使用谐波而不是斜坡波形来调谐询问激光器,并使用Fabry-Perot干涉仪在各种输入频率和振幅下校准激光器响应。使用快速互相关算法在透射光谱上跟踪WGM位移。我们演示了使用这种方法可测量高达10 kHz的动态力。我们还提出了一个简单的集总热容热模型,以预测激光器的调谐响应。

著录项

  • 作者

    Ali, Amir Roushdy.;

  • 作者单位

    Southern Methodist University.;

  • 授予单位 Southern Methodist University.;
  • 学科 Mechanical engineering.;Optics.;Electrical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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