Time-domain grating with a periodically driven qutrit

POSTER

Abstract

Physical systems in the time domain may exhibit analogous phenomena in real space, such as time crystals and time-domain Fresnel lenses. We report the experimental realization of time-domain grating using a superconducting qutrit in periodically modulated probe and control fields via two schemes: Simultaneous modulation and complementary modulation. Both experimental and numerical results exhibit modulated Autler-Townes (AT) and modulation-induced diffraction (MID) effects. Theoretical results also confirm that the peak positions of the interference fringes of AT and MID effects are determined by the usual two-level relative phases, while the observed diffraction fringes, appearing only in the complementary modulation, are however related to the three-level relative phase. Further analysis indicates that such a single-atom time-domain diffraction originates from the correlation effect between the two time-domain gratings. Moreover, we find that the widths of the diffraction fringes are independent of the control-field power. Our results shed light on the experimental exploration of quantum coherence for modulated multi-level systems and may find promising applications in fast all-microwave switches and quantum-gate operations in the strong-driving regime.

Authors

  • Yingying Han

    • Wuhan University, China
  • Tie-Fu Li

    • Beijing Computational Science Research Center AND Tsinghua University, China
  • Wenxian Zhang

    • Wuhan University, China
  • J. Q. You

    • Zhejiang University, China
  • Franco Nori

    • RIKEN Cluster for Pioneering Research, Japan AND The University of Michigan, USA