English

Tip-enhanced quantum-sensing spectroscopy for bright and reconfigurable solid-state single-photon emitters

Quantum Physics 2025-11-27 v1

Abstract

Atom-like defects in hexagonal boron nitride (hBN) provide room-temperature single-photon emission and coherent spin states, making them attractive for quantum-computing and -sensing applications. However, their random spatial and spectral characteristics hamper deterministic coupling with nano-optical cavities, limiting their use as bright single-photon sources and sensitive quantum sensors. Here, we present tip-enhanced quantum-sensing spectroscopy of single-photon emitters in hBN. Through precise spatial positioning of individual emitters within tip-cavities with different plasmon resonances, we adaptively control the enhancement rates of both excitation and emission, as well as the single-photon purity. In this way, optimal selection of their relative contributions can effectively reconfigure solid-state single-photon sources, with simultaneous nano-spectroscopic space- and time-resolved analyses. Furthermore, we demonstrate tip-enhanced quantum-sensing with single spin defects through optically detected magnetic resonance (ODMR) experiments in tip-coupled hBN nanoflakes. Our approach provides a unique pathway toward highly-sensitive and deterministic quantum-sensing with room-temperature single-photon emitters.

Keywords

Cite

@article{arxiv.2511.21127,
  title  = {Tip-enhanced quantum-sensing spectroscopy for bright and reconfigurable solid-state single-photon emitters},
  author = {Hyeongwoo Lee and Taeyoung Moon and Hyeonmin Oh and Kijeong Park and Huitae Joo and Milos Toth and Igor Aharonovich and Kyoung-Duck Park},
  journal= {arXiv preprint arXiv:2511.21127},
  year   = {2025}
}
R2 v1 2026-07-01T07:55:42.740Z