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An electrothermally actuated bi-axial scanning micromirror for medical imaging applications.

机译:用于医学成像应用的电热致动双轴扫描微镜。

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摘要

Until recently there has not been a system available to physicians that can allow them to perform real-time, non-invasive, in vivo imaging with micrometer resolution and millimeter penetration depth without the effect of ionizing radiation or special preparation of the sample area. With the development of optical coherent tomography (OCT), physicians have a bio imaging technique with the aforementioned characteristics. The ultimate goal in this area is to produce miniaturized OCT system on a chip (SOC) devices. In MEMS, the focus has been on constructing suitable micro mirrors for integration into these OCT SOC devices. With this in mind, time-domain OCT with a single photodetector seems the most practical technology for a prototype.;In this dissertation, a novel micromirror design that requires low power and operating temperature for use with other optical devices is presented. This work also outlines our envisioned integration scheme with embedded waveguides, on-chip laser source and photodetectors on GaAs/Si chips. A detailed account of design, fabrication and characterization results are presented here. The micromirror is composed of a single crystal silicon base with reflective aluminum coating. The mirror is connected to four bimorph electrothermal actuators through four polysilicon flexural connectors. Each electrothermal actuator consists of a polysilicon lower layer and an aluminum upper layer with embedded platinum heaters in the lower layer. Materials selection and thickness optimization (Timoshenko theory) for the bimorph actuators are carried out to maximize the out of plane displacement. The results show that this mirror can undergo large angular displacements of up to +/-32 degrees and vertical displacements of up to 131mum at a low power of 12mW with a temperature increase of 63 degree C in the actuator. Moreover, the temperature increase in the device die stays at 5 degree C, which makes this micromirror device a feasible candidate for an integrated OCT on chip system. Comparison of performance parameters using figure of merit shows that our device performs better than its counterparts. Although device characteristics like cut-off frequency and mirror flatness needs to be improved, this device has all the potential to be utilized with an actual OCT system.
机译:直到最近,还没有一种可供医生使用的系统,该系统可以使他们执行具有微米分辨率和毫米穿透深度的实时,非侵入性体内成像,而无需电离辐射或特殊准备样品区域。随着光学相干断层扫描(OCT)的发展,医师们已经拥有具有上述特征的生物成像技术。该领域的最终目标是生产微型OCT系统芯片(SOC)器件。在MEMS中,重点一直放在构建合适的微镜以集成到这些OCT SOC器件中。考虑到这一点,具有单个光电探测器的时域OCT似乎是原型的最实用技术。本论文提出了一种新颖的微镜设计,该器件需要低功率和工作温度才能与其他光学器件一起使用。这项工作还概述了我们在GaAs / Si芯片上与嵌入式波导,片上激光源和光电探测器的集成方案。本文介绍了设计,制造和表征结果的详细说明。微镜由具有反射铝涂层的单晶硅基底组成。镜子通过四个多晶硅弯曲连接器连接到四个双压电晶片电热致动器。每个电热致动器均由一个多晶硅下层和一个铝上层组成,在下层中嵌入有铂加热器。进行双压电晶片执行器的材料选择和厚度优化(Timoshenko理论)以最大化平面外位移。结果表明,在执行器中温度升高63摄氏度时,该反射镜在12mW的低功率下可承受高达+/- 32度的大角度位移和高达131mum的垂直位移。此外,器件管芯中的温度升高保持在5摄氏度,这使得该微镜器件成为集成OCT芯片系统的可行候选者。使用品质因数比较性能参数表明,我们的设备性能优于同类产品。尽管需要改善诸如截止频率和镜平面度之类的器件特性,但该器件具有在实际OCT系统中使用的所有潜力。

著录项

  • 作者

    Izhar, Umer.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 189 p.
  • 总页数 189
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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