Dynamics and resonance fluorescence from a superconducting artificial atom doubly driven by quantized and classical fields

Author:

Ruan Xinhui12ORCID,Wang Jia-Heng1,He Dong2,Song Pengtao345ORCID,Li Shengyong1,Zhao Qianchuan1ORCID,Kuang L. M.2ORCID,Tsai Jaw-Shen67,Zou Chang-Ling89ORCID,Zhang Jing1010,Zheng Dongning3459,Astafiev O. V.111213ORCID,Liu Yu-xi1,Peng Zhihui29

Affiliation:

1. Tsinghua University

2. Hunan Normal University

3. Institute of Physics

4. Chinese Academy of Sciences

5. University of Chinese Academy of Sciences

6. RIKEN

7. Tokyo University of Science

8. University of Science and Technology of China

9. Hefei National Laboratory

10. Xi'an Jiaotong University

11. Skolkovo Institute of Science and Technology

12. Moscow Institute of Physics and Technology

13. Royal Holloway, University of London

Abstract

We report an experimental demonstration of resonance fluorescence in a two-level superconducting artificial atom under two driving fields coupled to a detuned cavity. One of the fields is classical and the other is varied from quantum (vacuum fluctuations) to classical by controlling the photon number inside the cavity. The device consists of a transmon qubit strongly coupled to a one-dimensional transmission line and a coplanar waveguide resonator. We observe a sideband anticrossing and asymmetry in the emission spectra of the system through a one-dimensional transmission line, which is fundamentally different from the weak-coupling case. By changing the photon number inside the cavity, the emission spectrum of our doubly driven system approaches the case when the atom is driven by two classical bichromatic fields. We also measure the dynamical evolution of the system through the transmission line and study the properties of the first-order correlation function, Rabi oscillations, and energy relaxation in the system. The study of resonance fluorescence from an atom driven by two fields promotes understanding decoherence in superconducting quantum circuits and may find applications in superconducting quantum computing and quantum networks. Published by the American Physical Society 2024

Funder

National Natural Science Foundation of China

Innovation Program for Quantum Science and Technology

STI Program of Hunan Province

Laoshan Laboratory

Publisher

American Physical Society (APS)

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