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Optical whispering-gallery mode resonators for applications in optical communication and frequency control.

机译:光学耳语画廊模式谐振器,用于光学通信和频率控制中。

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摘要

High quality factor (Q) optical whispering gallery mode resonators are a key component in many on-chip optical systems, such as delay lines, modulators, and add-drop filters. They are also a convenient, compact structure for studying optomechanical interactions on-chip. In all these applications, optical Q is an important factor for high performance. For optomechanical reference oscillators in particular, high mechanical Q is also necessary. Previously, optical microresonators have been made in a wide variety of materials, but it has proven challenging to demonstrate high optical Q and high mechanical Q in a single, integrated device. This work demonstrates a new technique for achieving high optical Q on chip, a fully-integrated tunable filter with ultra-narrow minimum bandwidth, and the effect of material choice and device design on optical Q, mechanical Q and phase noise in microring optomechanical oscillators. To achieve a high optical Q, phosphosilicate glass (PSG) is studied as a resonator material. The low melting point of PSG enables wafer-scale reflow, which reduces sidewall roughness without significantly changing lithographically-defined dimensions. With this process, optical Qs up to 1.5 x 10.;7 are achieved, overten times higher than typical silicon optical resonators. These high-Q PSG resonators are then integrated with MEMS-actuated waveguides in a tunable-bandwidth filter. Due to the high Q of the PSG resonator, this device has a best-to-date minimum bandwidth of 0.8 GHz, with a tuning range of 0.8 to 8.5GHz. Finally, microring optomechanical oscillators (OMOs) in PSG, stoichiometric silicon nitride, and silicon are fabricated, and their performance is compared after characterization via a tapered optical fiber in vacuum. The silicon nitride device has the best performance, with a mechanical Q of more than 1 x 10.;4and record-breaking OMO phase noise of -102 dBc/Hz at a 1 kHz offset from a 72 MHz carrier.
机译:高品质因数(Q)的光学耳语画廊模式谐振器是许多片上光学系统(例如延迟线,调制器和分插滤波器)中的关键组件。它们还是一种方便,紧凑的结构,用于研究芯片上的光机械相互作用。在所有这些应用中,光学Q是实现高性能的重要因素。特别是对于光机械参考振荡器,还需要较高的机械Q。以前,光学微谐振器已经用多种材料制成,但是事实证明,在一个集成的设备中展示高光学Q和高机械Q具有挑战性。这项工作演示了一种用于实现高光学Q芯片的新技术,具有超窄最小带宽的完全集成的可调滤波器,以及材料选择和器件设计对微环光机电振荡器中的光学Q,机械Q和相位噪声的影响。为了获得高光学Q,人们研究了磷硅玻璃(PSG)作为谐振器材料。 PSG的低熔点可实现晶圆级回流,从而可在不显着改变光刻定义尺寸的情况下降低侧壁粗糙度。通过这种工艺,可以实现高达1.5 x 10.; 7的光学Qs,是典型硅光学谐振器的十倍以上。然后,将这些高Q PSG谐振器与MEMS驱动的波导集成在可调带宽滤波器中。由于PSG谐振器的高Q值,该器件的最新最小带宽为0.8 GHz,调谐范围为0.8至8.5 GHz。最后,制造了PSG,化学计量氮化硅和硅中的微环光机械振荡器(OMO),并在通过真空中的锥形光纤进行表征后比较了它们的性能。氮化硅器件具有最佳性能,机械Q值大于1 x 10 ;; 4,并且在距72 MHz载波1 kHz的偏移下,创纪录的OMO相位噪声为-102 dBc / Hz。

著录项

  • 作者

    Grutter, Karen Esther.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Electrical engineering.;Optics.;Physics.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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