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Development of a wavelength tunable filter using MEMS technology.

机译:利用MEMS技术开发波长可调滤波器。

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摘要

Microelectromechanical systems (MEMS) for optical applications have received intensive attention in recent years because of their potential applications in optical telecommunication. Traditional wavelength division multiplexing (WDM) offers high capacity but requires the fabrication of selective add-drop filters. MEMS technology offers an effective way to fabricate these components at low cost. This thesis presents the development of a device that tunes the Bragg wavelength by coupling into the evanescent field of the grating.; A Bragg grating is a periodic perturbation of the refractive index along a fiber or a periodic perturbation of the structure of a planar waveguide. The Bragg wavelength can be tuned by changing the degree to which a dielectric slab couples into the evanescent field. The result is a change in the effective index of the grating, and thus a change in the wavelength that which it reflects. In this thesis Bragg gratings were successfully written into an optical fiber using phase mask technique. Mechanical polishing was used to side-polish the fiber and remove cladding to expose the core. Grating structures were also fabricated in planar waveguide using E-beam writing and dry etching. In order to achieve the smoothest possible morphology of the waveguide, plasma dry etching of transparent substrates was studied in great detail. It is found that the pre-etch cleaning procedure greatly influences the ability to obtain a smooth etched surface.; Upper limits of evanescent field tuning were investigated by applying different index liquids such as D. I. water and index matching oils or by positioning different dielectric materials such as glass and silicon close to the grating. Planar waveguides were found to be more sensitive to effective index change. Two kinds of computer simulation were carried out to understand the mode profile and to estimate the value of effective index of planar waveguide under “dry” and “wet” conditions. The first one used an average depth of grating approximation. The second explicitly considered the corrugated structure of the waveguide. Results of both simulations were compared with the experimental results in order to find the proper simulation approach. The fiber or planar waveguide gratings were “device” integrated and their pro and cons were compared. Devices using an optical fiber employed a microactuator driven by electrothermal vibromotor to change the degree of coupling between fiber and “tuning block”. Device using planar waveguides used an electrostatic force actuated membrane, flip-chip mounted atop the waveguide. All devices were fabricated using polysilicon surface micromachining processes. I concluded that devices driven by electrostatic force were easier to actuate and their integration with waveguide less challenging.
机译:近年来,用于光学应用的微机电系统(MEMS)由于在光通信领域的潜在应用而受到广泛关注。传统波分复用(WDM)提供高容量,但需要制造选择性分插滤波器。 MEMS技术提供了一种低成本制造这些组件的有效方法。本文提出了一种通过耦合到光栅的van逝场来调谐布拉格波长的装置的开发。布拉格光栅是沿着光纤的折射率的周期性扰动或平面波导的结构的周期性扰动。可以通过改变电介质板耦合到into逝场的程度来调整布拉格波长。结果是光栅的有效折射率发生变化,从而导致光栅反射的波长发生变化。本文采用相位掩膜技术成功地将布拉格光栅写入光纤。使用机械抛光对光纤进行侧面抛光,并去除包层以露出纤芯。还使用电子束写入和干蚀刻在平面波导中制造了光栅结构。为了获得尽可能平滑的波导形态,对透明基板的等离子干法刻蚀进行了详细研究。发现蚀刻前清洁程序极大地影响了获得光滑的蚀刻表面的能力。通过使用不同折射率的液体(例如D.I.水和折射率匹配的油)或通过将不同的介电材料(例如玻璃和硅)放置在光栅附近,来研究investigated逝场调整的上限。发现平面波导对有效折射率变化更敏感。进行了两种计算机模拟,以了解模式轮廓并估算“干”和“湿”条件下平面波导的有效折射率值。第一个使用平均的光栅近似深度。第二个明确考虑了波导的波纹结构。将两种模拟的结果与实验结果进行比较,以找到合适的模拟方法。光纤或平面波导光栅是“设备”集成的,并比较了它们的优缺点。使用光纤的设备采用由电热振动电机驱动的微致动器来改变光纤与“调谐块”之间的耦合程度。使用平面波导的设备使用静电力驱动的薄膜,倒装芯片安装在波导的顶部。所有器件都是使用多晶硅表面微加工工艺制造的。我得出的结论是,由静电力驱动的设备更易于操作,与波导集成的挑战性也较小。

著录项

  • 作者

    Liu, Junting.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Engineering Electronics and Electrical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;工程材料学;
  • 关键词

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