Reversible spin-optical interface in luminescent organic radicals

Обратимый спин-оптический интерфейс в люминесцентных органических радикалах
Andreas Sperlich, Vladimir Dyakonov, Richard H. Friend, Gaetano Ricci, Emrys W. Evans, Feng Li, Yoann Olivier, David Beljonne, William K. Myers, David Casanova, Danillo Valverde, Alexander S. Romanov, Sebastian Gorgon, Kuo Lv, Jeannine Grüne, Bluebell H. Drummond, Giacomo Londi, Claire Tonnelé, Petri Murto
2023-08-16

doublet–triplet resonancehigh-spin statesluminescent organic radicalsreverse intersystem crossingspin-optical interface
Abstract Molecules present a versatile platform for quantum information science 1,2 and are candidates for sensing and computation applications 3,4 . Robust spin-optical interfaces are key to harnessing the quantum resources of materials 5 . To date, carbon-based candidates have been non-luminescent 6,7 , 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.
1
Designed organic molecules combine efficient luminescence with near-unity generation yield of excited states with spin multiplicity S > 1.
2
Doublet photoexcitation delocalizes onto the linked acene within a few picoseconds and evolves to a pure high-spin state (quartet for monoradical, quintet for biradical) near 1.8 eV.
3
Energy resonance between emissive doublet and triplet levels was achieved using covalently coupled tris(2,4,6-trichlorophenyl) methyl-carbazole radicals and anthracene.
4
For the biradical, return to the ground state produces strong spin correlation between previously uncorrelated radical spins across the anthracene.
5
The approach enables efficient initialization, spin manipulation, and light-based readout at room temperature, creating an organic platform for quantum technologies.
6
These high-spin states are coherently addressable with microwaves at 295 K, and optical readout is enabled by reverse intersystem crossing to emissive states.

Covalently coupled luminescent organic radicals (tris(2,4,6-trichlorophenyl)methyl–carbazole radicals and anthracene-linked monoradical/biradical molecules)

Reversible spin–optical interface properties: generation and coherent microwave addressability of high-spin excited states (quartet/quintet), ultrafast doublet-to-high-spin evolution, near-unity excited-state generation yield, reverse intersystem crossing enabling optical readout, and spin correlation after relaxation at room temperature

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Publication Date
2023-08-16
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Authors
Andreas Sperlich
Vladimir Dyakonov
Richard H. Friend
Gaetano Ricci
Emrys W. Evans
Feng Li
Yoann Olivier
David Beljonne
William K. Myers
David Casanova
Danillo Valverde
Alexander S. Romanov
Sebastian Gorgon
Kuo Lv
Jeannine Grüne
Bluebell H. Drummond
Giacomo Londi
Claire Tonnelé
Petri Murto
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