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Improved Light Emission Utilizing Polyfluorene Derivatives by Thermal Printing and Solution Process

机译:通过热敏印刷和溶液工艺利用多氟烯衍生物改善发光

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The emission properties of polymer light-emitting diode (PLEDs), using blue emissive poly(9,9-dioctylfluorene) (PFO) and yellow-green emissive poly[9,9-dioctylfluorenyl-2,7-diyl)-co-1,4-benzo- {2,1'-3}- thiadiazole)] (F8BT) fabricated by the spin-coating method, the toluene vapor method and the thermal printing method, were investigated. poly(2,7-(9,9-dinoctylfluorene)- alt-(1,4-phenylene-((4-sec-butylphenyl)imino)-1,4-phenylene)) (TFB) is useful for buffer layer and a dopant when we use the spin-coating method. When we use TFB as interlayer of PLED, TFB acts as exciton-blocking layer, thus prevents luminescence quenching. When we use TFB with 2-(4-biphenylyl)-5-phenyl-1,3,4-oxadiazole (PBD) as dopants of PFO, better current efficiency was achieved, compared to PFO only device. This result derives from these materials working as hole and electron transporting molecules. The blue and yellow-green PLEDs fabricated by the spincoating method showed maximum efficiencies of approximately 1.1 and lcd/A, respectively. The device with bis[1-(9,9- dimethyl-9H-fluoren-2-yl)-isoquinoline](acetylacetonate)iridium(III) (Ir(fliq)_2acac) doped in PFO showed red-emission and a maximum efficiency of approximately 1 cd/A. Current efficiencies of PLEDs with the β phase of PFO fabricated by the thermal printing method and the toluene vapor method were found to have better emission efficiency than that with the amorphous phase of PFO by the spin-coating method. The EL spectra of PLEDs using PFO and PFO:F8BT fabricated by the thermal printing method were polarized. The transient characteristics of PLEDs using β phase of PFO were better than amorphous phase of that. It is expected to improve the characteristics of PLEDs by the optimization of the thermal printing method. We demonstrated improved light emission of PLEDs with the high-quality β phase by the thermal printing method.
机译:使用蓝色发射聚(9,9-二辛基氟烯)(PFO)和黄绿色发射聚合物[9,9-二辛基氟烯基-2,7-二基)-Co-1的聚合物发光二极管(PLEDS)的排放性能。-CO-1采用旋涂法,甲苯蒸汽法和热印刷方法制造的4-苯并 - {2,1'-3} - 噻二唑)](F8BT)。聚(2,7-(9,9-丁基苯乙烯) - Alt-(1,4-苯基 - (((4-仲丁基苯基)氨基)-1,4-亚苯基))(TFB)可用于缓冲层和我们使用旋涂法时掺杂剂。当我们使用TFB作为镀层的中间层时,TFB充当激子阻断层,从而防止发光淬火。当我们使用具有2-(4-Biphylyl)-5-phenyl-1,3,4-二氧化物唑(PBD)的TFB作为PFO的掺杂剂时,与仅限PFO装置相比,实现了更好的电流效率。该结果源于作为孔和电子传输分子的这些材料。由根茎法制造的蓝色和黄绿色镀层分别显示出大约1.1和LCD / A的最大效率。具有双(1-(9,9,9-二甲基-9H-芴-2-基) - 喹啉](乙酰丙酮)铱(III)(III)(IRIQ)_2Acac)的铱(I1)(IR(FLIQ)_2acac)显示出红发射和最大效率大约1张cd / a。发现通过热敏印刷方法制造的PFOβ相的电流效率和甲苯蒸汽方法具有比旋涂法与PFO的无定形相的发射效率更好。使用PFO和PFO的PLED的EL光谱:通过热敏印刷方法制造的F8BT是极化的。使用PFO的β相的PLED的瞬态特性优于该β相的阶段。预计通过优化热印刷方法改善镀层的特性。我们通过热敏印刷方法证明了具有高质量β相的镀层的光发射。

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