English

Isotope engineering for spin defects in van der Waals materials

Quantum Physics 2024-01-05 v2 Mesoscale and Nanoscale Physics

Abstract

Spin defects in van der Waals materials offer a promising platform for advancing quantum technologies. Here, we propose and demonstrate a powerful technique based on isotope engineering of host materials to significantly enhance the coherence properties of embedded spin defects. Focusing on the recently-discovered negatively charged boron vacancy center (VB\mathrm{V}_{\mathrm{B}}^-) in hexagonal boron nitride (hBN), we grow isotopically purified h10B15N\mathrm{h}{}^{10}\mathrm{B}{}^{15}\mathrm{N} crystals. Compared to VB\mathrm{V}_{\mathrm{B}}^- in hBN with the natural distribution of isotopes, we observe substantially narrower and less crowded VB\mathrm{V}_{\mathrm{B}}^- spin transitions as well as extended coherence time T2T_2 and relaxation time T1T_1. For quantum sensing, VB\mathrm{V}_{\mathrm{B}}^- centers in our h10B15N\mathrm{h}{}^{10}\mathrm{B}{}^{15}\mathrm{N} samples exhibit a factor of 44 (22) enhancement in DC (AC) magnetic field sensitivity. For additional quantum resources, the individual addressability of the VB\mathrm{V}_{\mathrm{B}}^- hyperfine levels enables the dynamical polarization and coherent control of the three nearest-neighbor 15N{}^{15}\mathrm{N} nuclear spins. Our results demonstrate the power of isotope engineering for enhancing the properties of quantum spin defects in hBN, and can be readily extended to improving spin qubits in a broad family of van der Waals materials.

Keywords

Cite

@article{arxiv.2307.06441,
  title  = {Isotope engineering for spin defects in van der Waals materials},
  author = {Ruotian Gong and Xinyi Du and Eli Janzen and Vincent Liu and Zhongyuan Liu and Guanghui He and Bingtian Ye and Tongcang Li and Norman Y. Yao and James H. Edgar and Erik A. Henriksen and Chong Zu},
  journal= {arXiv preprint arXiv:2307.06441},
  year   = {2024}
}

Comments

8+5+12 pages, 4+5+8 figures

R2 v1 2026-06-28T11:28:55.910Z