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Optical resonators and quantum dots: An excursion into quantum optics, quantum information and photonics.

机译:光学谐振器和量子点:对量子光学,量子信息和光子学的游览。

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摘要

Modern communications technology has encouraged an intimate connection between Semiconductor Physics and Optics, and this connection shows best in the combination of electron-confining structures with light-confining structures.; Semiconductor quantum dots are systems engineered to trap electrons in a mesoscopic scale (the are composed of ≈ 10000 atoms), resulting in a behavior resembling that of atoms, but much richer. Optical microresonators are engineered to confine light, increasing its intensity and enabling a much stronger interaction with matter. Their combination opens a myriad of new directions, both in fundamental Physics and in possible applications.; This dissertation explores both semiconductor quantum dots and microresonators, through experimental work done with semiconductor quantum dots and microsphere resonators spanning the fields of Quantum Optics, Quantum Information and Photonics; from quantum algorithms to polarization converters.; Quantum Optics leads the way, allowing us to understand how to manipulate and measure quantum dots with light and to elucidate the interactions between them and microresonators.; In the Quantum Information area, we present a detailed study of the feasibility of excitons in quantum dots to perform quantum computations, including an experimental demonstration of the single-qubit Deutsch-Jozsa algorithm performedin a single semiconductor quantum dot.; Our studies in Photonics involve applications of microsphere resonators, which we have learned to fabricate and characterize. We present an elaborate description of the experimental techniques needed to study microspheres, including studies and proof of concept experiments on both ultra-sensitive microsphere sensors and whispering gallery mode polarization converters.
机译:现代通信技术促进了半导体物理与光学之间的紧密联系,这种结合在电子约束结构与光约束结构的结合中表现得最好。半导体量子点是经过设计的系统,可捕获介观尺度的电子(由10000个原子组成),从而产生类似于原子的行为,但行为更为丰富。光学微谐振器经过精心设计,可以限制光线,增加光线强度并实现与物质的更强相互作用。它们的结合为基础物理学和可能的应用打开了许多新的方向。本文通过对半导体量子点和微球谐振器的研究工作,探索了量子点和微谐振器,这些领域跨越了量子光学,量子信息和光子学领域。从量子算法到极化转换器。量子光学引领潮流,使我们能够理解如何利用光来操纵和测量量子点,并阐明它们与微谐振器之间的相互作用。在量子信息领域,我们将对量子点中激子进行量子计算的可行性进行详细研究,其中包括在单个半导体量子点中执行单量子位Deutsch-Jozsa算法的实验演示。我们在光子学方面的研究涉及微球谐振器的应用,我们已经学会了制造和表征微球谐振器。我们对研究微球所需的实验技术进行了详尽的描述,包括对超灵敏微球传感器和耳语画廊模式偏振转换器的研究和概念验证实验。

著录项

  • 作者

    Bianucci, Pablo.;

  • 作者单位

    The University of Texas at Austin.$bPhysics.;

  • 授予单位 The University of Texas at Austin.$bPhysics.;
  • 学科 Physics Condensed Matter.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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