Density-functional theory study of the interaction between NV centers and native defects in diamond

ORAL

Abstract

The NV- color center in diamond has been demonstrated as a nanoscale sensor for quantum metrology. However, the properties that make it ideal for measuring, e.g., minute electric and magnetic fields also make it sensitive to imperfections in the diamond host. In this work, we quantify the impact of nearby native defects on the many-body states of NV-. We combine previous quantum embedding results of strain and electric-field susceptibilities of NV- with density-functional theory calculations on native defects. The latter are used to parametrize continuum models in order to extrapolate the effects of native defects up to the micrometer scale. We show that under ideal measuring conditions, the optical properties of NV- are measurably affected by the strain caused by single carbon interstitials and vacancies up to 200 nm away; in contrast, the NV- is measurably affected by the electric field of such charged (neutral) native defects within a micron (100 nm). Finally, we show how measuring multiple individual NV- centers in the vicinity of a native defect can be used to determine the nature of the defect and its charge state.

*Authors acknowledge funding from: NSF Grant No. DMR-2237674; NSF Grant No. 2208863; NSF Grants No. 2203904 and 1914945; the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Co-design Center for Quantum Advantage (C2QA) under contract number DESC-0012704; BNL-SBU Seed Grant funding

Publication: https://doi.org/10.48550/arXiv.2507.22683

Presenters

  • Gabriel I López-Morales

    • Stony Brook University

Authors

  • Gabriel I López-Morales

    • Stony Brook University
  • Joanna M Zajac

    • Brookhaven National Laboratory (BNL)
  • Tom DeLord

    • City College of New York
  • Carlos Andres Meriles

    • City College of New York
  • Cyrus E Dreyer

    • Stony Brook University (SUNY)