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Generating and verifying entangled-itinerant microwave fields.

机译:生成和验证纠缠的微波微波场。

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摘要

This thesis presents the experimental achievements of (1) generating entangled-microwave fields propagating on two physically separate transmission lines and (2) verifying the entangled states with efficient measurements. Shared entanglement between two parties is an essential resource for quantum information processing and quantum communication protocols. Experimentally, entangled pairs of electromagnetic fields can be realized by distributing a squeezed vacuum over two separated modes. As a result, entanglement is revealed by the strong cross-correlations between specific quadratures of the two modes. Although it is possible to verify the presence of entanglement with low-efficiency quadrature measurements, higher detection efficiencies are desired for performing protocols that exploit entanglement with high fidelity.;In the microwave regime, Josephson parametric amplifiers (JPAs) fulfill the two major tasks mentioned above: JPAs prepare the required squeezed states to generate entanglement and enable us to perform efficient quadrature measurements. Therefore, for the purposes of entanglement generation and verification, ultralow-noise--frequency-tunable JPAs have been developed. Additionally, to increase the efficiency of entanglement generation, we integrate JPAs with two on-chip microwave passive components, a directional coupler and a quadrature hybrid, to form an entangler circuit. The two-mode entangled states are created at the two output modes of the entangler and are measured with a two-channel measurement apparatus where each of the two channels incorporates a JPA as a single-quadrature preamplifier. By employing this measurement scheme, the two measured quadratures of the two output modes can be chosen independently of each other, enabling a full characterization of the two-mode state. To definitively demonstrate the two-mode entanglement, I prove that the measured quadrature variances satisfy the inseparability criterion.
机译:本文介绍了(1)在两条物理上分开的传输线上传播的纠缠微波场和(2)通过有效测量验证纠缠态的实验成果。双方共享的纠缠是量子信息处理和量子通信协议的重要资源。实验上,可以通过在两个分离的模式上分配压缩真空来实现成对的电磁场纠缠。结果,两种模式的特定正交之间的强互相关揭示了纠缠。尽管可以通过低效率正交测量来验证纠缠的存在,但仍需要更高的检测效率来执行以高保真度进行纠缠的协议。;在微波领域,约瑟夫森参数放大器(JPA)完成了上述两项主要任务上图:JPA准备了所需的压缩状态以生成纠缠并使我们能够执行有效的正交测量。因此,出于纠缠生成和验证的目的,已经开发了超低噪声频率可调JPA。另外,为了提高纠缠产生的效率,我们将JPA与两个片上微波无源元件(定向耦合器和正交混合器)集成在一起,以形成纠缠电路。在纠缠器的两个输出模式下创建两个模式的纠缠状态,并使用两个通道的测量设备对其进行测量,其中两个通道中的每个通道均包含一个JPA作为单正交前置放大器。通过采用这种测量方案,可以彼此独立地选择两个输出模式的两个测得的正交信号,从而能够全面表征两个模式的状态。为了明确说明双模纠缠,我证明测得的正交方差满足不可分性标准。

著录项

  • 作者

    Ku, H. S.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Quantum physics.
  • 学位 Ph.D.
  • 年度 2014
  • 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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