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Floquet spin states in OLEDs.
Jamali, S; Mkhitaryan, V V; Malissa, H; Nahlawi, A; Popli, H; Grünbaum, T; Bange, S; Milster, S; Stoltzfus, D M; Leung, A E; Darwish, T A; Burn, P L; Lupton, J M; Boehme, C.
Affiliation
  • Jamali S; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
  • Mkhitaryan VV; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
  • Malissa H; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
  • Nahlawi A; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
  • Popli H; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
  • Grünbaum T; Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany.
  • Bange S; Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany.
  • Milster S; Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany.
  • Stoltzfus DM; Centre for Organic Photonics & Electronics, School of Chemistry and Molecular Biosciences, The University of Queensland, Brisbane, QLD, 4072, Australia.
  • Leung AE; National Deuteration Facility, Australian Nuclear Science and Technology Organization (ANSTO), Lucas Heights, NSW, 2234, Australia.
  • Darwish TA; Scientific Activities Division, European Spallation Source ERIC, Lund, 224 84, Sweden.
  • Burn PL; National Deuteration Facility, Australian Nuclear Science and Technology Organization (ANSTO), Lucas Heights, NSW, 2234, Australia.
  • Lupton JM; Centre for Organic Photonics & Electronics, School of Chemistry and Molecular Biosciences, The University of Queensland, Brisbane, QLD, 4072, Australia.
  • Boehme C; Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA. john.lupton@ur.de.
Nat Commun ; 12(1): 465, 2021 Jan 19.
Article in En | MEDLINE | ID: mdl-33469009
Electron and hole spins in organic light-emitting diodes constitute prototypical two-level systems for the exploration of the ultrastrong-drive regime of light-matter interactions. Floquet solutions to the time-dependent Hamiltonian of pairs of electron and hole spins reveal that, under non-perturbative resonant drive, when spin-Rabi frequencies become comparable to the Larmor frequencies, hybrid light-matter states emerge that enable dipole-forbidden multi-quantum transitions at integer and fractional g-factors. To probe these phenomena experimentally, we develop an electrically detected magnetic-resonance experiment supporting oscillating driving fields comparable in amplitude to the static field defining the Zeeman splitting; and an organic semiconductor characterized by minimal local hyperfine fields allowing the non-perturbative light-matter interactions to be resolved. The experimental confirmation of the predicted Floquet states under strong-drive conditions demonstrates the presence of hybrid light-matter spin excitations at room temperature. These dressed states are insensitive to power broadening, display Bloch-Siegert-like shifts, and are suggestive of long spin coherence times, implying potential applicability for quantum sensing.

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nat Commun Journal subject: BIOLOGIA / CIENCIA Year: 2021 Document type: Article Affiliation country: United States Country of publication: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nat Commun Journal subject: BIOLOGIA / CIENCIA Year: 2021 Document type: Article Affiliation country: United States Country of publication: United kingdom