用于溶液处理的绿色磷光有机发光二极管的三元混合宿主

Di Zhang, Zugang Liu, Qianmin Dong, Ranran Han, Hongjun Wang
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引用次数: 0

摘要

本文制备了一系列基于混合主客体结构的溶液处理绿色磷光有机发光二极管(PhOLEDs),并研究了1,3-二-9-咔唑苯(mCP)、聚(9-乙烯基咔唑)(PVK)和4,4 ',4″-三(n -咔唑)-三苯胺(TCTA)等不同空穴输运材料及其组合作为寄主对发光二极管性能的影响。研究发现,以tris(2-(p- toyl)吡啶- c2,N)铱(III) (Ir(mppy)3)为绿色客体材料的三元共混主体(mCP:PVK:TCTA)为器件,在驱动电压为7伏时的亮度为10213 cd m-2,最高外量子效率(EQE)为16.91%,在CIE坐标为(0.31,0.61)下,在1000 cd m-2时的滚转率较小,EQE保持在12.95%。与相应的单、二进制主机系统(mCP, 4600.49 cd m-2, 14.62%, 24.90%;PVK, 5116.74 cd m-2, 15.77%, 19.78%;mCP:PVK, 5275.05 cd m-2, 16.99%, 22.07%),基于三元主体材料的PhOLED具有最佳性能。基于三元共混主体的绿色oled具有优异的电致发光(EL)性能,主要归因于从主体到掺杂物的高效能量传递、合适的最高已占据分子轨道(HOMO)水平和增强的载流子输运平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ternary blend hostes for solution processed green phosphorescent organic light-emitting diodes
In this paper a series of solution processed green phosphorescent organic light-emitting diodes (PhOLEDs) based on blend hosts-guest configuration have been fabricated and the effect of various hole transport materials, e.g. 1,3-Di-9- carbazolylbenzene (mCP), poly(9-vinylcarbazole) (PVK) and 4,4′,4″-tris(N-carbazolyl)-triphenylamine (TCTA) and their combination as the hosts on the performance of PhOLEDs have investigated. It is found that the device with the ternary blend host (mCP:PVK:TCTA) doped with tris(2-(p-tolyl)pyridine-C2,N)iridium(III) (Ir(mppy)3) as a green guest material can achieve a luminance of 10213 cd m-2 at a driven voltage of 7 volts, the uppermost external quantum efficiency (EQE) of 16.91%, and a small roll over and maintain EQE of 12.95% at 1000 cd m-2 with the CIE coordinates of (0.31,0.61). Compared with the corresponding single and binary host systems (mCP, 4600.49 cd m-2, 14.62%, 24.90%; PVK, 5116.74 cd m-2, 15.77%, 19.78%; mCP:PVK, 5275.05 cd m-2, 16.99%, 22.07%), the PhOLED based on ternary-host materials has the optimal performance. The superior electroluminescence (EL) performance for ternary blend host-based green PhOLEDs was attributed to the efficient energy transfer from the host to dopant, the appropriate highest occupied molecular orbital (HOMO) level and the enhanced charge carrier transport balance.
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