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Fluorescent OLED device performance improvement

One of the most common uses for peri-substituted pentacene is as a red emitter in organic light-emitting diodes (OLEDs). Diphenylpentacene, for example, has a fluorescence quantum yield of 30% as a 0.55% dopant in Alq3, yielding OLED devices with efficiencies near the theoretical maximum [34]. Variation of the aryl substituents improves solubility and processing and can increase fluorescence quantum yield (for example, pentacene 25 has a composite fluorescence quantum yield of 32%) [35]. There is one report of the use of diaryl pentacenes in FET devices, but the performance was generally poor (hole mobility for vapor-deposited 23 was of the order of 10-8 cm2 V-1 s-1) [30]. [Pg.64]

Enhancement in the performance of OLEDs can be achieved by balanced charge injection and charge transport. The charge transport is related to the drift mobility of charge carriers. Liu et al. [166] reported blue emission from OLED based on mixed host structure. A mixed host structure consists of two different hosts NPB and 9,10-bis(2 -naphthyl)anthracene (BNA) and one dopant 4,4 -bis(2,2-diphenylvinyl)-l,l -biphenyl (ethylhexyloxy)-l,4-phenylene vinylene (DPVBi) material. They reported significant improvement in device lifetime compared to single host OLEDs. The improvement in the lifetime was attributed to the elimination of heterojunction interface and prevention to formation of fluorescence quenchers. Luminance of 80,370 cd/m2 at 10 V and luminous efficiency of 1.8 cd/A were reported. [Pg.83]


See other pages where Fluorescent OLED device performance improvement is mentioned: [Pg.445]    [Pg.383]    [Pg.84]    [Pg.106]    [Pg.143]    [Pg.22]    [Pg.435]    [Pg.445]    [Pg.498]    [Pg.498]    [Pg.344]    [Pg.133]    [Pg.163]    [Pg.310]    [Pg.141]    [Pg.434]    [Pg.44]   
See also in sourсe #XX -- [ Pg.447 ]




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Device performance

Fluorescence OLEDs

Fluorescent OLED device

Improved OLEDs

Improving performance

OLEDs

OLEDs devices

Performance improvement

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