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Planar photonic crystal nanocavities with active quantum nanostructures.

机译:具有活性量子纳米结构的平面光子晶体纳米腔。

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摘要

Extreme photon localization is applicable to constructing building blocks in photonic systems and quantum information systems. A finding fact that photon localization in small space modifies the radiation process was reported in 1944 by Purcell, and advances in fabrication technology enable such structures to be constructed at optical frequencies. Many demands of building compact photonic systems and quantum information systems have enhanced activities in this field. The photonic crystal cavity has potential in providing a cavity that supports only the fundamental mode ∼(lambda/2 n)3 together with good confinement of light within a resonator. This thesis addresses experimental and theoretical aspects of building such photon localization blocks embedding active quantum nanostructures in a planar photonic crystal platform. Examples given in this thesis are (1) quantum dot photonic crystal nanolasers, (2) high-speed photonic crystal nanolasers, and (3) light-matter coupling in a single quantum dot photonic crystal cavity system.; 1. A combination of quantum dots and photonic crystal nanocavities provides chirpless high-speed nanolasers. Room temperature low-threshold lasing action was demonstrated from a coupled cavity design (0.7∼1.2(lambda/ n)3) embedding InAs/GaAs self-assembled quantum dots. The nanolasers showed small (absorbed) pumping power threshold as sub-20 muW and high spontaneous coupling factors ∼0.1. Single quantum dot lasing is likely to occur both by proper alignment of the single quantum dot relative to geometries of photonic crystals and by a narrow QD emission line in the high-Q localized mode.; 2. Enhancement of radiation process in a small cavity was used to demonstrate high frequency relaxation oscillation up to 130 GHz. Built-in quantum well saturable absorbers enable us to probe the relaxation oscillation of such small lasers.; 3. Onset of intermediate light-matter coupling was demonstrated in a single quantum dot photonic crystal cavity system. A tripling in Q/V (quality factor divided by mode volume) is found to enable photons to start a strong interaction with a single quantum dot.
机译:极端光子定位适用于在光子系统和量子信息系统中构造构件。 Purcell在1944年报道了一个发现事实,即小空间中的光子定位会改变辐射过程,并且制造技术的进步使这种结构能够以光频率构造。建立紧凑的光子系统和量子信息系统的许多需求增强了该领域的活动。光子晶体腔具有潜力提供仅支持基本模式〜(λ/ 2 n)3以及将光良好地限制在谐振腔内的腔。本文研究了在平面光子晶体平台中构建嵌入有源量子纳米结构的光子定位块的实验和理论方面。本文给出的例子是(1)量子点光子晶体纳米激光器,(2)高速光子晶体纳米激光器,(3)单量子点光子晶体腔系统中的光-质耦合。 1.量子点和光子晶体纳米腔的组合提供了无chi高速纳米激光。通过嵌入InAs / GaAs自组装量子点的耦合腔设计(0.7〜1.2(λ/ n)3)证明了室温低阈值激光作用。纳米激光器的抽运功率阈值小(吸收)阈值低于20μW,自发耦合因子高,约为0.1。单个量子点发射很可能是由于单个量子点相对于光子晶体的几何形状正确对准以及在高Q局部模式下由窄QD发射线引起的。 2.通过增强小腔体中的辐射过程来演示高达130 GHz的高频弛豫振荡。内置的量子阱可饱和吸收器使我们能够探测这种小型激光器的弛豫振荡。 3.在单量子点光子晶体腔系统中证明了中间光-质耦合的开始。发现Q / V的三倍(质量因数除以模式体积)可使光子开始与单个量子点进行强相互作用。

著录项

  • 作者

    Yoshie, Tomoyuki.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics Optics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 118 p.
  • 总页数 118
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;无线电电子学、电信技术;
  • 关键词

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