We investigate quenching mechanisms of excited states in emitter layers for organic light emitting diodes (LEDs). An extensive study of a strong electric field-induced modulation (over 50%) of the time-resolved luminescence in a diamine derivative (TPD): polycarbonate blend films doped with an organic complex of europium are presented as a typical example of an important class of emitters for organic monochromatic LEDs. Using this method allowed us to identify the quenched species as the excited ligand precursors of the emissive europium ion states. Manipulating the electrode materials and their electrical bias, the electric field-enhanced dissociation, and interaction with injected charge could be separated and found as principal quenching mechanisms. We show the first one to follow the three-dimensional Onsager theory of geminate recombination, and the second one raised by their interaction with the TPD-transported holes. The interaction rate constant is found to be underlain by the three-dimensional diffusion of excited ligand singlets, combining the exciton diffusion coefficient and long-range (Forster type) energy transfer parameters. The dynamic parameters of the hole-precursor excitons interactions, extracted from the experimental data, allow us to establish the criteria for identifying useful ligands and matrices in the optimized design of electrophosphorescent, linelike emitting molecules, and device structure for organic LEDs. (C) 2008 American Institute of Physics.

Kalinowski, J., Mezyk, J., Meinardi, F., Tubino, R., Cocchi, M., Virgili, D. (2008). Exciton quenching in emitter blends for organic light emitting devices probed by electric field-dependent time-resolved luminescence. THE JOURNAL OF CHEMICAL PHYSICS, 128(12), 124712-124712 [10.1063/1.2841458].

Exciton quenching in emitter blends for organic light emitting devices probed by electric field-dependent time-resolved luminescence

MEINARDI, FRANCESCO;TUBINO, RICCARDO;
2008

Abstract

We investigate quenching mechanisms of excited states in emitter layers for organic light emitting diodes (LEDs). An extensive study of a strong electric field-induced modulation (over 50%) of the time-resolved luminescence in a diamine derivative (TPD): polycarbonate blend films doped with an organic complex of europium are presented as a typical example of an important class of emitters for organic monochromatic LEDs. Using this method allowed us to identify the quenched species as the excited ligand precursors of the emissive europium ion states. Manipulating the electrode materials and their electrical bias, the electric field-enhanced dissociation, and interaction with injected charge could be separated and found as principal quenching mechanisms. We show the first one to follow the three-dimensional Onsager theory of geminate recombination, and the second one raised by their interaction with the TPD-transported holes. The interaction rate constant is found to be underlain by the three-dimensional diffusion of excited ligand singlets, combining the exciton diffusion coefficient and long-range (Forster type) energy transfer parameters. The dynamic parameters of the hole-precursor excitons interactions, extracted from the experimental data, allow us to establish the criteria for identifying useful ligands and matrices in the optimized design of electrophosphorescent, linelike emitting molecules, and device structure for organic LEDs. (C) 2008 American Institute of Physics.
Articolo in rivista - Articolo scientifico
solid films; quantum yield; emission; complex; diodes; recombination
English
2008
128
12
124712
124712
124712
none
Kalinowski, J., Mezyk, J., Meinardi, F., Tubino, R., Cocchi, M., Virgili, D. (2008). Exciton quenching in emitter blends for organic light emitting devices probed by electric field-dependent time-resolved luminescence. THE JOURNAL OF CHEMICAL PHYSICS, 128(12), 124712-124712 [10.1063/1.2841458].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/2271
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