PRX Quantum (Sep 2022)

Probing the Optical Dynamics of Quantum Emitters in Hexagonal Boron Nitride

  • Raj N. Patel,
  • David A. Hopper,
  • Jordan A. Gusdorff,
  • Mark E. Turiansky,
  • Tzu-Yung Huang,
  • Rebecca E. K. Fishman,
  • Benjamin Porat,
  • Chris G. Van de Walle,
  • Lee C. Bassett

DOI
https://doi.org/10.1103/PRXQuantum.3.030331
Journal volume & issue
Vol. 3, no. 3
p. 030331

Abstract

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Hexagonal boron nitride is a van der Waals material that hosts visible-wavelength quantum emitters at room temperature. However, experimental identification of the quantum emitters’ electronic structure is lacking, and key details of their charge and spin properties remain unknown. Here, we probe the optical dynamics of quantum emitters in hexagonal boron nitride using photon emission correlation spectroscopy. Several quantum emitters exhibit ideal single-photon emission with noise-limited photon antibunching, g^{(2)}(0)=0. The photoluminescence emission lineshapes are consistent with individual vibronic transitions. However, polarization-resolved excitation and emission suggests the role of multiple optical transitions, and photon emission correlation spectroscopy reveals complicated optical dynamics associated with excitation and relaxation through multiple electronic excited states. We compare the experimental results to quantitative optical dynamics simulations, develop electronic structure models that are consistent with the observations, and discuss the results in the context of ab initio theoretical calculations.