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Temperature and spin-state dependence of phonon-limited spin relaxation for nitrogen-vacancy centers in diamond

POSTER

Abstract

Phonon-induced relaxation of the nitrogen-vacancy (NV) center's ground-state electronic spin triplet places hard limits on its performance in many proposed quantum applications. We report experimental measurements of the relaxation rates on both the ms=-1 ↔ ms=+1 qutrit transition and the ms=0 ↔ ms=±1 qubit transition as functions of temperature from 5 to 475 K in high-purity samples, where relaxation is dominated by spin-phonon interactions. We determine the upper limits imposed on NV spin coherence by spin-phonon relaxation over the temperature range relevant for almost all NV applications, and discuss their implications. We analyze the processes responsible for the observed relaxation, finding that two-phonon Raman scattering of quasilocalized phonons with a range of energies surrounding a 72(2) meV vibrational resonance drives relaxation on the qutrit transition approximately twice as fast as on the qubit transition. In addition, we find that a T5 term contributes to the temperature dependence of the relaxation rates on both transitions with equal magnitude, suggesting that the current understanding of the role of acoustic phonons in NV spin-phonon relaxation is incomplete. Part of this work was performed under the auspices of US DOE by LLNL under Contract DE-AC52-07NA27344.

Presenters

  • Matthew C Cambria

    University of Wisconsin-Madison

Authors

  • Matthew C Cambria

    University of Wisconsin-Madison

  • Ariel Norambuena

    Universidad Mayor, Santiago, Chile, Universidad Mayor

  • Hossein Dinani

    Universidad Mayor, Santiago, Chile, Universidad Mayor

  • Aedan Robert H Gardill

    University of Wisconsin-Madison, University of Wisconsin - Madison

  • Ishita Kemeny

    University of Wisconsin-Madison, University of Wisconsin - Madison

  • Yanfei Li

    University of Wisconsin-Madison, University of Wisconsin - Madison

  • Vincenzo Lordi

    Lawrence Livermore National Lab, Lawrence Livermore Natl Lab

  • Adam Gali

    Wigner Research Centre for Physics & Budapest University of Technology and Economics, Budapest, Hungary, Wigner Research Centre for Physics and Budapest University of Technology and Economics

  • Jeronimo R Maze

    Pontificia Universidad Catolica de Chile, Santiago, Chile, Pontificia Universidad Católica de Chile

  • Shimon Kolkowitz

    University of Wisconsin-Madison, University of Wisconsin - Madison, Wisconsin