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在超导量子电路中探测强驱动的自旋-玻色子模型。

Probing the strongly driven spin-boson model in a superconducting quantum circuit.

机构信息

Institute of Physics, University of Augsburg, Universitätsstraße 1, D-86135, Augsburg, Germany.

Institute for Quantum Computing, University of Waterloo, Waterloo, N2L 3G1, Canada.

出版信息

Nat Commun. 2018 Apr 11;9(1):1403. doi: 10.1038/s41467-018-03626-w.

Abstract

Quantum two-level systems interacting with the surroundings are ubiquitous in nature. The interaction suppresses quantum coherence and forces the system towards a steady state. Such dissipative processes are captured by the paradigmatic spin-boson model, describing a two-state particle, the "spin", interacting with an environment formed by harmonic oscillators. A fundamental question to date is to what extent intense coherent driving impacts a strongly dissipative system. Here we investigate experimentally and theoretically a superconducting qubit strongly coupled to an electromagnetic environment and subjected to a coherent drive. This setup realizes the driven Ohmic spin-boson model. We show that the drive reinforces environmental suppression of quantum coherence, and that a coherent-to-incoherent transition can be achieved by tuning the drive amplitude. An out-of-equilibrium detailed balance relation is demonstrated. These results advance fundamental understanding of open quantum systems and bear potential for the design of entangled light-matter states.

摘要

量子二能级系统与周围环境相互作用在自然界中无处不在。这种相互作用抑制了量子相干性,并迫使系统达到稳态。这种耗散过程可以用典型的自旋-玻色子模型来描述,该模型描述了一个由两个状态的粒子(“自旋”)与由谐振子组成的环境相互作用。迄今为止,一个基本问题是强烈的相干驱动对强耗散系统的影响程度。在这里,我们通过实验和理论研究了一个与电磁环境强耦合并受到相干驱动的超导量子比特。该设置实现了驱动欧姆自旋-玻色子模型。我们表明,驱动增强了环境对量子相干性的抑制,并且通过调整驱动幅度可以实现相干到非相干的转变。我们还展示了非平衡详细平衡关系。这些结果推进了对开放量子系统的基本理解,并为纠缠光物质态的设计提供了潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9af5/5895759/28341ea25ae1/41467_2018_3626_Fig1_HTML.jpg

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