TY - JOUR
T1 - Reversible spin-optical interface in luminescent organic radicals
AU - Gorgon, Sebastian
AU - Lv, Kuo
AU - Grüne, Jeannine
AU - Drummond, Bluebell H.
AU - Myers, William K.
AU - Londi, Giacomo
AU - Ricci, Gaetano
AU - Valverde, Danillo
AU - Tonnelé, Claire
AU - Murto, Petri
AU - Romanov, Alexander S.
AU - Casanova, David
AU - Dyakonov, Vladimir
AU - Sperlich, Andreas
AU - Beljonne, David
AU - Olivier, Yoann
AU - Li, Feng
AU - Friend, Richard H.
AU - Evans, Emrys W.
N1 - © 2023. The Author(s).
PY - 2023/8/17
Y1 - 2023/8/17
N2 - Molecules present a versatile platform for quantum information science1,2 and are candidates for sensing and computation applications3,4. Robust spin-optical interfaces are key to harnessing the quantum resources of materials5. To date, carbon-based candidates have been non-luminescent6,7, which prevents optical readout via emission. Here we report organic molecules showing both efficient luminescence and near-unity generation yield of excited states with spin multiplicity S > 1. This was achieved by designing an energy resonance between emissive doublet and triplet levels, here on covalently coupled tris(2,4,6-trichlorophenyl) methyl-carbazole radicals and anthracene. We observed that the doublet photoexcitation delocalized onto the linked acene within a few picoseconds and subsequently evolved to a pure high-spin state (quartet for monoradical, quintet for biradical) of mixed radical–triplet character near 1.8 eV. These high-spin states are coherently addressable with microwaves even at 295 K, with optical readout enabled by reverse intersystem crossing to emissive states. Furthermore, for the biradical, on return to the ground state the previously uncorrelated radical spins either side of the anthracene shows strong spin correlation. Our approach simultaneously supports a high efficiency of initialization, spin manipulations and light-based readout at room temperature. The integration of luminescence and high-spin states creates an organic materials platform for emerging quantum technologies.
AB - Molecules present a versatile platform for quantum information science1,2 and are candidates for sensing and computation applications3,4. Robust spin-optical interfaces are key to harnessing the quantum resources of materials5. To date, carbon-based candidates have been non-luminescent6,7, which prevents optical readout via emission. Here we report organic molecules showing both efficient luminescence and near-unity generation yield of excited states with spin multiplicity S > 1. This was achieved by designing an energy resonance between emissive doublet and triplet levels, here on covalently coupled tris(2,4,6-trichlorophenyl) methyl-carbazole radicals and anthracene. We observed that the doublet photoexcitation delocalized onto the linked acene within a few picoseconds and subsequently evolved to a pure high-spin state (quartet for monoradical, quintet for biradical) of mixed radical–triplet character near 1.8 eV. These high-spin states are coherently addressable with microwaves even at 295 K, with optical readout enabled by reverse intersystem crossing to emissive states. Furthermore, for the biradical, on return to the ground state the previously uncorrelated radical spins either side of the anthracene shows strong spin correlation. Our approach simultaneously supports a high efficiency of initialization, spin manipulations and light-based readout at room temperature. The integration of luminescence and high-spin states creates an organic materials platform for emerging quantum technologies.
UR - http://www.scopus.com/inward/record.url?scp=85168251757&partnerID=8YFLogxK
UR - https://www.mendeley.com/catalogue/3a3fd3e8-f559-3abd-a011-522b8e48dc1b/
U2 - 10.1038/s41586-023-06222-1
DO - 10.1038/s41586-023-06222-1
M3 - Article
C2 - 37587296
AN - SCOPUS:85168251757
SN - 0028-0836
VL - 620
SP - 538
EP - 544
JO - Nature
JF - Nature
IS - 7974
ER -