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溶液处理小分子作为高效蓝色和白色磷光有机发光二极管的混合主体。

Solution-processed small molecules as mixed host for highly efficient blue and white phosphorescent organic light-emitting diodes.

机构信息

State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Graduate School of Chinese Academy of Sciences, Changchun 130022, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2012 Dec;4(12):6579-86. doi: 10.1021/am301703a. Epub 2012 Nov 20.

Abstract

The widely used hole-transporting host 4,4',4″-tris(N-carbazolyl)-triphenylamine (TCTA) blended with either a hole-transporting or an electron-transporting small-molecule material as a mixed-host was investigated in the phosphorescent organic light-emitting diodes (OLEDs) fabricated by the low-cost solution-process. The performance of the solution-processed OLEDs was found to be very sensitive to the composition of the mixed-host systems. The incorporation of the hole-transporting 1,1-bis[(di-4-tolylamino)phenyl]cyclohexane (TAPC) into TCTA as the mixed-host was demonstrated to greatly reduce the driving voltage and thus enhance the efficiency due to the improvement of hole injection and transport. On the basis of the mixed-host of TCTA:TAPC, we successfully fabricated low driving voltage and high efficiency blue and white phosphorescent OLEDs. A maximum forward viewing current efficiency of 32.0 cd/A and power efficiency of 25.9 lm/W were obtained in the optimized mixed-host blue OLED, which remained at 29.6 cd/A and 19.1 lm/W at the luminance of 1000 cd/m(2) with a driving voltage as low as 4.9 V. The maximum efficiencies of 37.1 cd/A and 32.1 lm/W were achieved in a single emissive layer white OLED based on the TCTA:TAPC mixed-host. Even at 1000 cd/m(2), the efficiencies still reach 34.2 cd/A and 23.3 lm/W and the driving voltage is only 4.6 V, which is comparable to those reported from the state-of-the-art vacuum-evaporation deposited white OLEDs.

摘要

广泛使用的空穴传输主体 4,4',4″-三(N-咔唑基)三苯胺 (TCTA) 与空穴传输或电子传输小分子材料混合作为混合主体,用于通过低成本溶液处理制备磷光有机发光二极管 (OLED)。发现溶液处理 OLED 的性能对混合主体系统的组成非常敏感。将空穴传输材料 1,1-双[(二-4-甲苯氨基)苯基]环己烷 (TAPC) 掺入 TCTA 作为混合主体,由于空穴注入和传输的改善,可大大降低驱动电压,从而提高效率。基于 TCTA:TAPC 的混合主体,我们成功制备了低驱动电压和高效率的蓝色和白色磷光 OLED。在优化的混合主体蓝色 OLED 中,获得了 32.0 cd/A 的最大前向视角电流效率和 25.9 lm/W 的功率效率,在亮度为 1000 cd/m²时,驱动电压低至 4.9 V,仍保持 29.6 cd/A 和 19.1 lm/W。在基于 TCTA:TAPC 混合主体的单发射层白色 OLED 中,实现了 37.1 cd/A 的最大效率和 32.1 lm/W。即使在 1000 cd/m²时,效率仍达到 34.2 cd/A 和 23.3 lm/W,驱动电压仅为 4.6 V,可与最先进的真空蒸发沉积白色 OLED 相媲美。

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