DOE OSTI · 2424233
Optically Active Spin Defects in Few-Layer Thick Hexagonal Boron Nitride
Abstract
Optically active spin defects in hexagonal boron nitride (hBN) are promising quantum systems for the design of two-dimensional quantum sensing units offering optimal proximity to the sample being probed. In this Letter, we first demonstrate that the electron spin resonance frequencies of boron vacancy centers ($V$$^{–}_{B}$) can be detected optically in the limit of few-atomic-layer thick hBN flakes despite the nanoscale proximity of the crystal surface that often leads to a degradation of the stability of solid-state spin defects. We then analyze the variations of the electronic spin properties of $V$$^{–}_{B}$ centers with the hBN thickness with a focus on (i) the zero-field splitting parameters, (ii) the optically induced spin polarization rate and (iii) the longitudinal spin relaxation time. Furthermore, this Letter provides important insights into the properties of $V$$^{–}_{B}$ centers embedded in ultrathin hBN flakes, which are valuable for future developments of foil-based quantum sensing technologies.
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Durand, A., Clua-Provost, T., Fabre, F., Kumar, P., Li, J., Edgar, J. H., Udvarhelyi, P., Gali, A., Marie, X., Robert, C., Gérard, J. M., Gil, B., Cassabois, G., Jacques, Vincent. 2023-09-14. Optically Active Spin Defects in Few-Layer Thick Hexagonal Boron Nitride. https://doi.org/10.1103/physrevlett.131.116902
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