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Photonic sources and detectors for quantum information protocols: A trilogy in eight parts.

机译:量子信息协议的光子源和检测器:三部分,分为八个部分。

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摘要

Quantum information processing (QIP) promises to revolutionize existing methods of manipulating data, via truly unique paradigms based on fundamental nonclassical physical phenomenon. However, the eventual success of optical QIP depends critically on the available technologies. Currently, creating multiple-photon states is extremely inefficient because almost no source thus far has been well optimized. Additionally, high-efficiency single-photon detectors can drastically improve multi-photon QIP (typical efficiencies are ∼70%). In fact, it has been shown that scalable linear optical quantum computing is possible only if the product of the source and detector efficiencies exceeds ∼67%. The research presented here focuses on developing optimized source and detector technologies for enabling scalable QIP.;The goal of our source research is to develop an ideal " indistinguishable" source of ultrabright polarization-entangled but spatially- and spectrally-unentangled photon pairs. We engineer such an ideal source by first designing spatio-spectrally unentangled photons using optimized and group-velocity matched spontaneous parametric down conversion (SPDC). Next, we generate polarization-entangled photons using the engineered SPDC. Here we present solutions to the various challenges encountered during the indistinguishable source development. We demonstrate high-fidelity ultrafast pulsed and cw-diode laser-pumped sources of polarization-entangled photons, as well as the first production of polarization-entanglement directly from the highly nonlinear biaxial crystal BiB3O6 (BiBO). We also discuss the first experimental confirmation of the emission-angle dependence of the downconversion polarization (the Migdall effect), and a novel scheme for polarization-dependent focusing.;The goal of our single-photon detector research is to develop a very high-efficiency detection system that can also resolve incident photon number, a feature absent from the typical detectors employed for QIP. We discuss the various cryogenic, optical and electronic challenges encountered en route to detector development and present details on detector characterization, ultra-short electronics design and photon-number-resolution studies.;The source and detector technologies developed here share a common goal: to enhance the efficiency of existing quantum protocols and pave the way for new ones. Here we discuss some of the possible benefits via a popular quantum protocol---teleportation---as well as a novel quantum communication technique---hyper-fingerprinting. Taken as a whole, this dissertation explores viable technological options for enhancing optical quantum information protocols, offers a perspective on the current status and limitations of existing technologies, and highlights the possibilities enabled by optimized photonic sources and detectors.
机译:量子信息处理(QIP)有望通过基于基本非经典物理现象的真正独特范例彻底改变现有的数据处理方法。但是,光学QIP的最终成功关键取决于可用的技术。当前,创建多光子状态的效率极低,因为到目前为止几乎没有任何光源可以得到很好的优化。此外,高效的单光子探测器可以大大提高多光子QIP(典型效率约为70%)。实际上,已经表明,只有当源和检测器效率的乘积超过〜67%时,可伸缩线性光学量子计算才有可能。这里提出的研究重点在于开发优化的源和检测器技术,以实现可扩展的QIP。我们的源研究的目标是开发理想的“无法区分”的超亮偏振纠缠但在空间和光谱上不纠缠的光子对。我们通过首先使用优化的和群速度匹配的自发参量下变频(SPDC)设计时空光谱未纠缠的光子来设计这样的理想光源。接下来,我们使用工程SPDC生成偏振纠缠的光子。在这里,我们提出了针对难以区分的源开发过程中遇到的各种挑战的解决方案。我们演示了偏振纠缠光子的高保真超快脉冲和CW二极管激光泵浦光源,以及直接由高度非线性的双轴晶体BiB3O6(BiBO)产生的偏振纠缠。我们还将讨论下转换偏振的发射角相关性(Migdall效应)的第一个实验确认,以及偏振相关的聚焦的新方案。;我们的单光子探测器研究的目标是开发一个非常高的效率检测系统,它还可以解决入射光子数,这是QIP使用的典型检测器所没有的功能。我们讨论了探测器开发过程中遇到的各种低温,光学和电子挑战,并提供了有关探测器特性,超短电子设计和光子数分辨率研究的详细信息;这里开发的源和探测器技术有一个共同的目标:提高现有量子协议的效率,并为新的量子协议铺平道路。在这里,我们讨论了通过流行的量子协议(运输)以及新颖的量子通信技术(超指纹)可能带来的好处。总体而言,本文探讨了增强光量子信息协议的可行技术选择,从现有技术的现状和局限性出发,并着重介绍了优化的光子源和探测器所带来的可能性。

著录项

  • 作者

    Rangarajan, Radhika.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Physics Quantum.;Physics General.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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