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量化来自驱动超导电路的量子热贡献。

Quantifying the quantum heat contribution from a driven superconducting circuit.

作者信息

Elouard Cyril, Thomas George, Maillet Olivier, Pekola J P, Jordan A N

机构信息

Department of Physics and Astronomy, University of Rochester, Rochester, New York 14627, USA.

QTF Center of Excellence, Department of Applied Physics, Aalto University School of Science, P.O. Box 13500, 00076 Aalto, Finland.

出版信息

Phys Rev E. 2020 Sep;102(3-1):030102. doi: 10.1103/PhysRevE.102.030102.

Abstract

Heat flow management at the nanoscale is of great importance for emergent quantum technologies. For instance, a thermal sink that can be activated on-demand is a highly desirable tool that may accommodate the need to evacuate excess heat at chosen times, e.g., to maintain cryogenic temperatures or reset a quantum system to ground, and the possibility of controlled unitary evolution otherwise. Here we propose a design of such heat switch based on a single coherently driven qubit. We show that the heat flow provided by a hot source to the qubit can be switched on and off by varying external parameters, the frequency and the intensity of the driving. The complete suppression of the heat flow is a quantum effect occurring for specific driving parameters that we express and we analyze the role of the coherences in the free-qubit energy eigenbasis. We finally study the feasibility of this quantum heat switch in a circuit QED setup involving a charge qubit coupled to thermal resistances. We demonstrate robustness to experimental imperfections such as additional decoherence, paving the road towards experimental verification of this effect.

摘要

纳米尺度的热流管理对于新兴量子技术至关重要。例如,一种可按需激活的热沉是一种非常理想的工具,它可以满足在特定时间排出多余热量的需求,比如维持低温温度或将量子系统重置为基态,否则还具备可控幺正演化的可能性。在此,我们提出一种基于单个相干驱动量子比特的热开关设计。我们表明,通过改变外部参数,即驱动的频率和强度,可以开启和关闭热源向量子比特提供的热流。热流的完全抑制是一种针对特定驱动参数出现的量子效应,我们对此进行了表述,并分析了自由量子比特能量本征基中相干性的作用。我们最终研究了这种量子热开关在涉及与热阻耦合的电荷量子比特的电路量子电动力学设置中的可行性。我们证明了该设计对诸如额外退相干等实验缺陷具有鲁棒性,为该效应的实验验证铺平了道路。

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