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Exploiting ionization dynamics in the nitrogen vacancy center for rapid, high-contrast spin, and charge state initialization

  • D. Wirtitsch
  • , G. Wachter
  • , S. Reisenbauer
  • , M. Gulka
  • , V. Ivády
  • , F. Jelezko
  • , A. Gali
  • , M. Nesladek
  • , M. Trupke
    • Universität Wien, Experimentalphysik
    • Hasselt University
    • ELTE Eötvös Loránd University
    • Ulm University
    • Austrian Academy of Sciences (ÖAW)
    • IMG, University of Vienna
    • Czech Academy of Sciences
    • Wigner Research Centre for Physics
    • Linköping University
    • Budapest University of Technology and Economics
    • IMEC Interuniversity Microelectronics Centre

    Research output: Contribution to journalArticlepeer-review

    Abstract

    We propose and experimentally demonstrate a method to strongly increase the sensitivity of spin measurements on nitrogen vacancy (NV) centers in diamond, which can be readily implemented in existing quantum sensing experiments. While charge state transitions of this defect are generally considered a parasitic effect to be avoided, we show here that these can be used to significantly increase the NV center's spin contrast, a key quantity for high-sensitivity magnetometry and high-fidelity state readout. The protocol consists of a two-step procedure, in which the charge state of the defect is first purified by a strong laser pulse, followed by weak illumination to obtain high spin polarization. We observe a relative improvement of the readout contrast by 17 % and infer a reduction of the initialization error of more than 50%. The contrast enhancement is accompanied by a beneficial increase of the readout signal. For long sequence durations, typically encountered in high-resolution magnetometry, a measurement speedup by a factor of >1.5 is extracted, and we find that the technique is beneficial for sequences of any duration. Additionally, our findings give detailed insight into the charge and spin polarization dynamics of the NV center and provide actionable insights for direct optical, spin-to-charge, and electrical readout of solid-state spin centers.
    Original languageEnglish
    Article number013014
    Number of pages14
    JournalPhysical Review Research
    Volume5
    Issue number1
    DOIs
    Publication statusPublished - 13 Jan 2023

    Research Field

    • Not defined
    • Power System Digitalisation

    Keywords

    • quantum physics
    • nitrogen vacancy center

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