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Chemically Tuning Room Temperature Pulsed Optically Detected Magnetic Resonance

Quantum Physics 2025-06-18 v1 Chemical Physics

Abstract

Optical detection of magnetic resonance enables spin-based quantum sensing with high spatial resolution and sensitivity-even at room temperature-as exemplified by solid-state defects. Molecular systems provide a complementary, chemically tunable, platform for room-temperature optically detected magnetic resonance (ODMR)-based quantum sensing. A critical parameter governing sensing sensitivity is the optical contrast-i.e., the difference in emission between two spin states. In state-of-the-art solid-state defects such as the nitrogen-vacancy center in diamond, this contrast is approximately 30%. Here, capitalizing on chemical tunability, we show that room-temperature ODMR contrasts of 40% can be achieved in molecules. Using a nitrogen-substituted analogue of pentacene (6,13-diazapentacene), we enhance contrast compared to pentacene and, by determining the triplet kinetics through time-dependent pulsed ODMR, show how this arises from accelerated anisotropic intersystem crossing. Furthermore, we translate high-contrast room-temperature pulsed ODMR to self-assembled nanocrystals. Overall, our findings highlight the synthetic handles available to optically readable molecular spins and the opportunities to capitalize on chemical tunability for room-temperature quantum sensing.

Keywords

Cite

@article{arxiv.2503.24341,
  title  = {Chemically Tuning Room Temperature Pulsed Optically Detected Magnetic Resonance},
  author = {Sarah K. Mann and Angus Cowley-Semple and Emma Bryan and Ziqiu Huang and Sandrine Heutz and Max Attwood and Sam L. Bayliss},
  journal= {arXiv preprint arXiv:2503.24341},
  year   = {2025}
}

Comments

9 pages, 5 figures