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Photonic whispering-gallery resonators in new environments.

机译:新环境中的光子回音壁共振器。

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摘要

Optical whispering-gallery devices, like the microtoroid or microdisk, confine light at resonant frequencies and in ultra-small volumes for long periods of time. Such ultra-low loss resonators have been applied in diverse areas of scientific research, including low-threshold lasers on-chip, biological sensing, and quantum computing. In this thesis, novel ultra-low loss microstructures are studied for their unique characteristics and utility. The author investigates the interaction between microcavities and various environments in order to quantify the results and lay the foundation for future applications.;The first optical cavity studied is the microtoroid, which possesses ultra-high quality factor (Q) on account of its nearly atomic smooth surface, produced by surface-tension induced laser reflow. Ytterbium-doped silica microtoroids are fabricated by a sol-gel technique. The ytterbium microtoroid laser achieves record-low laser threshold (2 µW) in air, and produces the first laser output for a solid-state laser in water. This laser in water can be developed as an ultra-sensitive biological sensor, with potentially record sensitivity enabled by gain-narrowed linewidth. Also, a novel CO 2 laser reflow and microtoroid testing vacuum system is demonstrated. Fabrication and testing of microtoroids is performed in a vacuum chamber to study the effect of atmospheric water and upper limit of Q in microtoroids.;The selective reflow of microtoroids presents difficulties for integration of on-chip optical waveguides. As an alternative, dimension-preserving low-loss optical structures are researched for their unique applications. A gold-coated silica microdisk is fabricated, and demonstrates record and nearly-ideal quality factor (1,376) as a surface-plasmon polariton resonator. The hybrid optical-plasmonic mode structure is studied in simulation and experiment. The plasmonic resonator has ultra-low mode volume and high field confinement, making it suitable for short-range optical communication or sensing. Finally, a novel whispering-gallery optical delay line in a spiral geometry is designed and experimentally demonstrated. The center transition region of the spiral is optimized for low transmission loss by beam propagation simulation. A 1.4 m long spiral waveguide within a 1 cm2 area is presented. The spiral waveguide structure is being developed as a real-time optical delay line with fiber-like loss, important for optical communication and signal processing.
机译:光学耳语画廊设备(如微环面或微盘)可将光长时间限制在共振频率和超小体积内。这种超低损耗谐振器已应用于科学研究的各个领域,包括片上低阈值激光器,生物传感和量子计算。本文针对新型超低损耗微结构的独特特性和实用性进行了研究。作者研究了微腔与各种环境之间的相互作用,以量化结果并为将来的应用奠定基础。;研究的第一个光学腔是微环,由于其几乎是原子的,因此具有超高品质因数(Q)由表面张力引起的激光回流产生的光滑表面。 a掺杂的二氧化硅微环是通过溶胶-凝胶技术制备的。 air微环形激光器在空气中达到创纪录的低激光阈值(2 µW),并在水中产生固态激光器的第一激光输出。水中的这种激光可以开发为超灵敏的生物传感器,通过缩小增益的线宽可以实现潜在的记录灵敏度。此外,还展示了一种新型的CO 2激光回流和微环测试真空系统。在真空室内进行微环的制造和测试,以研究大气水和微环中Q的上限的影响。环的选择性回流为集成片上光波导带来了困难。作为替代方案,针对尺寸保留的低损耗光学结构的独特应用进行了研究。制作了一个镀金的二氧化硅微盘,并证明了作为表面等离子体激元谐振器的记录和接近理想的品质因数(1,376)。通过仿真和实验研究了混合光等离子体模式结构。等离子体谐振器具有超低模式体积和高磁场限制,使其适合于短距离光通信或传感。最后,设计并实验证明了一种新颖的螺旋几何耳语画廊光学延迟线。螺旋的中心过渡区域通过光束传播仿真针对低传输损耗进行了优化。提出了在1 cm2区域内的1.4 m长螺旋波导。螺旋波导结构正在发展为具有光纤状损耗的实时光延迟线,对光通信和信号处理非常重要。

著录项

  • 作者

    Ostby, Eric Paul.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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