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Cavity quantum electrodynamics with atom-like mirrors

机译:具有原子样镜的腔量子电动动力学

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摘要

It has long been recognized that atomic emission of radiation is not an immutable property of an atom, but is instead dependent on the electromagnetic environment(1) and, in the case of ensembles, also on the collective interactions between the atoms(2-6). In an open radiative environment, the hallmark of collective interactions is enhanced spontaneous emission-super-radiance(2)-with non-dissipative dynamics largely obscured by rapid atomic decay(7). Here we observe the dynamical exchange of excitations between a single artificial atom and an entangled collective state of an atomic array(9) through the precise positioning of artificial atoms realized as superconducting qubits(8) along a one-dimensional waveguide. This collective state is dark, trapping radiation and creating a cavity-like system with artificial atoms acting as resonant mirrors in the otherwise open waveguide. The emergent atom-cavity system is shown to have a large interaction-to-dissipation ratio (cooperativity exceeding 100), reaching the regime of strong coupling, in which coherent interactions dominate dissipative and decoherence effects. Achieving strong coupling with interacting qubits in an open waveguide provides a means of synthesizing multi-photon dark states with high efficiency and paves the way for exploiting correlated dissipation and decoherence-free subspaces of quantum emitter arrays at the many-body level(10-13).
机译:已经认识到,辐射的原子排放不是原子的不可变性,而是依赖于电磁环境(1),并且在合奏的情况下,也对原子之间的集体相互作用(2-6 )。在开放的辐射环境中,集体相互作用的标志是增强的自发排放 - 超光线(2) - 在很大程度上被快速原子衰减(7)掩盖的非耗散动态。在这里,我们观察到单个人造原子和原子阵列(9)的缠绕的激发动态交换,通过人造原子的精确定位沿一维波导实现为超导Qubits(8)。该集体状态是暗,捕获的辐射,并形成具有作为诸如开放波导中的谐振镜的人造原子的腔类似的系统。出现的原子腔系统被示出具有大的相互作用 - 耗散比(合作超过100),到达强偶联的制度,其中相干的相互作用主导耗散和堵塞效应。实现具有在开放波导中的相互作用Qubits的强耦合提供了一种以高效率合成多光子暗状态的方法,并铺平了在许多体级(10-13的Quantum发射器阵列的相关耗散和无渗透子空间的方式(10-13 )。

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  • 来源
    《Nature》 |2019年第7758期|692-697|共6页
  • 作者单位

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

    CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA|CALTECH Norman Bridge Lab Phys Pasadena CA 91125 USA|Barcelona Inst Sci & Technol ICFO Inst Ciencies Foton Barcelona Spain|Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

    Barcelona Inst Sci & Technol ICFO Inst Ciencies Foton Barcelona Spain|ICREA Barcelona Spain;

    CALTECH Kavli Nanosci Inst Pasadena CA 91125 USA|CALTECH Thomas J Watson Sr Lab Appl Phys Pasadena CA 91125 USA|CALTECH Inst Quantum Informat & Matter Pasadena CA 91125 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:15:17

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