Time crystals in doped semiconductors

ORAL

Abstract

Spin ensembles in semiconductors provide a unique experimental platform for the observation of emergent many-body dynamics like many-body localization and quantum chaos. High precision quantum control of electron and nuclear spins in phosphorus doped silicon have been utilized to uncover the many-body correlations in decoherence. We present here the experimental observation of a many-body time crystal, a novel dynamical phase of matter with spontaneously broken time translation symmetry, in periodically driven nanoscale electron spins in phosphorus doped silicon. The signatures of time crystalline correlations were studied as a function of spin concentration. These observations can be theoretically captured by the paradigmatic central spin model previously used for describing decoherence in this system.

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Funding from EPSRC through a DTG and EP/K025945/1 (UNDEDD), EC Horizon 2020 through 279781 (ASCENT), and the Glasstone Fellowship.

Presenters

  • Arijeet Pal

    • Rudolf Peierls Centre for Theoretical Physics, University of Oxford
    • Rudolf Peierls Centre for Theoretical Physics, Oxford University

Authors

  • Arijeet Pal

    • Rudolf Peierls Centre for Theoretical Physics, University of Oxford
    • Rudolf Peierls Centre for Theoretical Physics, Oxford University
  • James O'Sullivan

    • London Centre for Nanotechnology, University College London
  • Michael Thewalt

    • Department of Physics, Simon Fraser University
  • John Morton

    • London Centre for Nanotechnology, University College London
    • London Centre for Nanotechnology