A deep red-emitting perylenediimide-iridium-complex dyad: following the photophysical deactivation pathways: Following the photophysical deactivation pathways

  • Rubén Dario Costa Riquelme
  • , Francisco J. Céspedes-Guirao
  • , Henk Jan Bolink
  • , Fernando Fernández-Lázaro
  • , Angela Sastre-Santos
  • , Enrique Ortí
  • , Johannes Gierschner

Research output: Contribution to journalArticlepeer-review

30 Scopus citations

Abstract

We elucidate the photophysical deactivation pathways of a novel perylenediimide-iridium-complex dyad (PDI-iridium), suitable for deep-red electroluminescent devices, in a joint experimental and quantum-chemical approach. Excitation of the PDI mainly decays via PDI fluorescence (55%), although a considerable part is deactivated via the PDI triplet by efficient spin-orbit coupling activated by the close-by iridium atom. Upon irradiation of the Ir-complex moiety, the phosphorescence usually observed for iridium complexes is efficiently quenched by triplet-triplet transfer to the PDI triplet, as demonstrated by transient absorption spectroscopy. The study reveals the importance of molecular orbital level control on the design of molecular dyads, which can be well-predicted at a quantum-chemical level.

Original languageEnglish
Pages (from-to)19292-19297
Number of pages6
JournalThe Journal of Physical Chemistry C
Volume2009
Issue number113
DOIs
StatePublished - 9 Oct 2009

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