Endothermic energy transfer: A mechanism for generating very efficient high-energy phosphorescent emission in organic materials
Top Cited Papers
- 24 September 2001
- journal article
- Published by AIP Publishing in Applied Physics Letters
- Vol. 79 (13), 2082-2084
- https://doi.org/10.1063/1.1400076
Abstract
Intermolecular energy transfer processes typically involve an exothermic transfer of energy from a donor site to a molecule with a substantially lower-energy excited state (trap). Here, we demonstrate that an endothermic energy transfer from a molecular organic host (donor) to an organometallicphosphor (trap) can lead to highly efficient blue electroluminescence. This demonstration of endothermic transfer employs iridium(III)bis(4,6-di-fluorophenyl)-pyridinato- N,C 2 ′ ) picolinate as the phosphor. Due to the comparable energy of the phosphor triplet state relative to that of the 4,4′- N,N ′ -dicarbazole-biphenyl conductive host molecule into which it is doped, the rapid exothermic transfer of energy from phosphor to host, and subsequent slow endothermic transfer from host back to phosphor, is clearly observed. Using this unique triplet energy transfer process, we force emission from the higher-energy, blue triplet state of the phosphor (peak wavelength of 470 nm), obtaining a very high maximum organic light-emitting device external quantum efficiency of (5.7±0.3)% and a luminous power efficiency of (6.3±0.3)lm/W.Keywords
This publication has 11 references indexed in Scilit:
- Highly Phosphorescent Bis-Cyclometalated Iridium Complexes: Synthesis, Photophysical Characterization, and Use in Organic Light Emitting DiodesJournal of the American Chemical Society, 2001
- High-efficiency red electrophosphorescence devicesApplied Physics Letters, 2001
- Transient analysis of organic electrophosphorescence: I. Transient analysis of triplet energy transferPhysical Review B, 2000
- High-efficiency organic electrophosphorescent devices with tris(2-phenylpyridine)iridium doped into electron-transporting materialsApplied Physics Letters, 2000
- Very high-efficiency green organic light-emitting devices based on electrophosphorescenceApplied Physics Letters, 1999
- Highly efficient phosphorescent emission from organic electroluminescent devicesNature, 1998
- High brightness and efficiency blue light-emitting polymer diodesApplied Physics Letters, 1998
- Organic multi-color electroluminescence display with fine pixelsSynthetic Metals, 1997
- Highly efficient blue electroluminescence from a distyrylarylene emitting layer with a new dopantApplied Physics Letters, 1995
- Reversible triplet-triplet energy transfer within a covalently linked bichromophoric moleculeThe Journal of Physical Chemistry, 1992