A charge transfer mechanism for optically addressable solid-state spin pairs

机制(生物学) 固态 自旋(空气动力学) 国家(计算机科学) 材料科学 计算机科学 化学物理 物理 纳米技术 工程物理 量子力学 算法 热力学
作者
Islay O. Robertson,Benjamin Whitefield,Sam C. Scholten,Priya Singh,Alexander J. Healey,Philipp Reineck,Mehran Kianinia,David A. Broadway,Igor Aharonovich,Jean‐Philippe Tetienne
出处
期刊:Nature Physics [Nature Portfolio]
卷期号:21 (12): 1981-1987 被引量:2
标识
DOI:10.1038/s41567-025-03091-5
摘要

Optically detected magnetic resonance (ODMR) with no resolvable zero-field splitting has been observed from emitters in hexagonal boron nitride across a broad range of wavelengths, but so far an understanding of their microscopic structure and the physical origin of ODMR has been lacking. Here we perform comprehensive measurements and modelling of the spin-resolved photodynamics of ensembles and single emitters, and uncover a universal model that accounts, and provides an intuitive physical explanation, for all key experimental features. The model, inspired by the radical-pair mechanism from spin chemistry, assumes a pair of nearby point defects -- a primary optically active defect and a secondary defect. Charge transfer between the two defects creates a metastable weakly coupled spin pair with ODMR naturally arising from selection rules. Using first-principle calculations, we show that simple defect pairs made of common carbon defects provide a plausible microscopic explanation. Our optical-spin defect pair (OSDP) model resolves several previously open questions including the asymmetric envelope of the Rabi oscillations, the large variability in ODMR contrast amplitude and sign, and the wide spread in emission wavelength. It may also explain similar phenomena observed in other wide bandgap semiconductors such as GaN. The presented framework will be instrumental in guiding future theoretical and experimental efforts to study and engineer solid-state spin pairs.
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