ArticleJournal of the American Chemical Society2025
Chemically Tuning Room Temperature Pulsed Optically Detected Magnetic Resonance.
Article in Journal of the American Chemical Society, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
What it found
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Who cites it
6 citing papers in PubMed.
- Heteroleptic CrChemical science · 2026Article
- Molecular Diradical Spin Qubits in a Crystalline Host as a Platform for Quantum Sensing.ACS central science · 2026Article
- Spin Coupling in Symmetric and Asymmetric Allyl and Phenalenyl Diradicals Bridged by an Inverted Singlet-Triplet System.The journal of physical chemistry. A · 2026Article
- Optically addressable molecular spin qubits.MRS bulletin · 2026Review
- Surveying optically addressable spin qubits for quantum information and sensing technology.npj quantum materials · 2026Review
- Achieving 40% room-temperature ODMR contrast in molecular systems through chemical tuning.Magnetic resonance letters · 2025Article
Corrections and comments
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Authors and funding
7 authors.
Funding
No grant is acknowledged in the PubMed record.
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.
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Registered trials
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