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September 28, 2025Journal of the American Chemical Society0 citations

Optically Detected Magnetic Resonance on Carbene Molecular Qubits

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SRSimon RoggorsNSNico StrieglerTUThomas Unden

Key Points

  • Remarkable fluorescence contrast of over 40% was achieved in solid-state qubit materials.
  • The spin coherence times measured are record-high at T2 = 157(4) μs under cryogenic conditions.
  • Multireference quantum chemical calculations provided insights into the unique spin characteristics.
  • Ground-state triplet carbenes are utilized, featuring two unpaired electrons generated with high spatial accuracy.

Abstract

Solid-state quantum systems with optical and spin degrees of freedom have found widespread application in emerging quantum technologies. Recently, molecular qubits came forward as precisely tunable entities that present a compelling alternative to well-established yet hard-to-tune point defects in solid-state systems. In this work, we disclose ground-state triplet carbenes as purely organic qubits comprising two unpaired electrons in close proximity that can be generated in a crystalline matrix with high spatial accuracy via in situ photoactivation. We further demonstrate how state-of-the-art multireference quantum chemical calculations provide insight into their fundamental spin characteristics. As a result, several key assets were realized in a single solid-state qubit material under cryogenic conditions: The exclusive use of light elements (C, H, N, O), photolithographic patterning, optical spin-selective transitions, and a large zero-field splitting in the GHz regime, which, taken together, lays the ground for optically detected magnetic resonance with remarkable fluorescence contrast of >40% and record-high spin coherence times of T2 = 157(4) μs at 5 K.

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Cite This Study

Roggors et al. (2025) studied this question.

synapsesocial.com/papers/68d909fc41e1c178a14f5d39https://doi.org/10.1021/jacs.5c10272
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