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Highly efficient blue organic light-emitting diodes using quantum well-like multiple emissive layer structure
in
Aluminum
/ Anthracene
/ Biphenyl
/ Diamines
/ Electron recombination
/ Emissivity
/ Energy levels
/ Excitons
/ Indium tin oxides
/ Light emitting diodes
/ Lithium
/ Luminous efficacy
/ Molecular orbitals
/ Naphthalene
/ Organic light emitting diodes
/ Quantum wells
2014
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Highly efficient blue organic light-emitting diodes using quantum well-like multiple emissive layer structure
by
in
Aluminum
/ Anthracene
/ Biphenyl
/ Diamines
/ Electron recombination
/ Emissivity
/ Energy levels
/ Excitons
/ Indium tin oxides
/ Light emitting diodes
/ Lithium
/ Luminous efficacy
/ Molecular orbitals
/ Naphthalene
/ Organic light emitting diodes
/ Quantum wells
2014
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
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Highly efficient blue organic light-emitting diodes using quantum well-like multiple emissive layer structure
in
Aluminum
/ Anthracene
/ Biphenyl
/ Diamines
/ Electron recombination
/ Emissivity
/ Energy levels
/ Excitons
/ Indium tin oxides
/ Light emitting diodes
/ Lithium
/ Luminous efficacy
/ Molecular orbitals
/ Naphthalene
/ Organic light emitting diodes
/ Quantum wells
2014
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Highly efficient blue organic light-emitting diodes using quantum well-like multiple emissive layer structure
Journal Article
Highly efficient blue organic light-emitting diodes using quantum well-like multiple emissive layer structure
2014
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Overview
In this study, the properties of blue organic light-emitting diodes (OLEDs), employing quantum well-like structure (QWS) that includes four different blue emissive materials of 4,4′-bis(2,2′-diphenylyinyl)-1,1′-biphenyl (DPVBi), 9,10-di(naphth-2-yl)anthracene (ADN), 2-(N,N-diphenyl-amino)-6-[4-(N,N-diphenyl amine)styryl]naphthalene (DPASN), and bis(2-methyl-8-quinolinolate)-4-(phenyl phenolato) aluminum (BAlq), were investigated. Conventional QWS blue OLEDs composed of multiple emissive layers and charge blocking layer with lower highest occupied molecular orbital (HOMO)-lowest unoccupied molecular orbital (LUMO) energy level, and devices with triple emissive layers for more significant hole-electron recombination and a wider region for exciton generation were designed. The properties of triple emissive layered blue OLEDs with the structure of indium tin oxide (ITO) /N,N′-diphenyl-N,N′-bis(1-naphthyl-phenyl)-(1,1′-biphenyl)-4,4′-diamine (NPB) (700 Ǻ)/X (100 Ǻ)/BAlq (100 Ǻ)/X (100 Ǻ)/4,7-diphenyl-1,10-phenanthroline (Bphen) (300 Ǻ)/lithium quinolate (Liq) (20 Ǻ)/aluminum (Al) (1,200 Ǻ) (X = DPVBi, ADN, DPASN) were examined. HOMO-LUMO energy levels of DPVBi, ADN, DPASN, and BAlq are 2.8 to 5.9, 2.6 to 5.6, 2.3 to 5.2, and 2.9 to 5.9 eV, respectively. The OLEDs with DPASN/BAlq/DPASN QWS with maximum luminous efficiency of 5.32 cd/A was achieved at 3.5 V.
Publisher
Springer Nature B.V
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