首页> 外文OA文献 >High efficiency single dopant white electrophosphorescent light emitting diodesElectronic supplementary information (ESI) available: emission spectra as a function of doping concentration for 3 in CBP, as well as the absorption and emission spectra of Irppz, CBP and mCP. See http://www.rsc.org/suppdata/nj/b2/b204301g/
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High efficiency single dopant white electrophosphorescent light emitting diodesElectronic supplementary information (ESI) available: emission spectra as a function of doping concentration for 3 in CBP, as well as the absorption and emission spectra of Irppz, CBP and mCP. See http://www.rsc.org/suppdata/nj/b2/b204301g/

机译:高效单掺杂剂白色电磷光发光发光二极管电子元素辅助信息(ESI)可用:发射光谱作为CBP中3中掺杂浓度的函数,以及IRPPZ,CBP和MCP的吸收和发射光谱。查看http://www.rsc.org/suppdata/nj/b2/b204301g/

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摘要

Efficient white electrophosphorescence has been achieved with a single emissive dopant. The dopant in these white organic light emitting diodes (WOLEDs) emits simultaneously from monomer and aggregate states, leading to a broad spectrum and high quality white emission. The dopant molecules are based on a series of platinum(II) [2-(4,6-difluorophenyl)pyridinato-N,C2′] β-diketonates. All of the dopant complexes described herein have identical photophysics in dilute solution with structured blue monomer emission (λmax = 468, 500, 540 nm). A broad orange aggregate emission (λmax ≈ 580 nm) is also observed, when doped into OLED host materials. The intensity of the orange band increases relative to the blue monomer emission, as the doping level is increased. The ratio of monomer to aggregate emission can be controlled by the doping concentration, the degree of steric bulk on the dopant and by the choice of the host material. A doping concentration for which the monomer and excimer bands are approximately equal gives an emission spectrum closest to standard white illumination sources. WOLEDs have been fabricated with doped CBP and mCP luminescent layers (CBP = N,N′-dicarbazolyl-4,4′-biphenyl, mCP = N,N′-dicarbazolyl-3,5-benzene). The best efficiencies and color stabilities were achieved when an electron/exciton blocking layer (EBL) is inserted into the structure, between the hole transporting layer and doped CBP or mCP layer. The material used for an EBL in these devices was fac-tris(1-phenylpyrazolato-N,C2′)iridium(III). The EBL material effectively prevents electrons and excitons from passing through the emissive layer into the hole transporting NPD layer. CBP based devices gave a peak external quantum efficiency of 3.3 ± 0.3% (7.3 ± 0.7 lm W-1) at 1 cd m-2, and 2.3 ± 0.2% (5.2 ± 0.3 lm W-1) at 500 cd m-2. mCP based devices gave a peak external quantum efficiency of 6.4% (12.2 lm W-1, 17.0 cd A?1), CIE coordinates of 0.36, 0.44 and a CRI of 67 at 1 cd m-2 (CIE = Commission Internationale de lu27Eclairage, CRI = color rendering index). The efficiency of the mCP based device drops to 4.3 ± 0.5% (8.1 ± 0.6 lm W-1, 11.3 cd A-1) at 500 cd m-2, however, the CIE coordinates and CRI remain unchanged.
机译:通过单一发射掺杂剂实现了高效的白色电磷光。这些白色有机发光二极管(Woled)中的掺杂剂同时发射单体和骨料状态,导致广谱和高质量的白色发射。掺杂剂分子基于一系列铂(II)[2-(4,6-二氟苯基)吡啶-N,C2']β-硫酮。本文所述的所有掺杂剂复合物在稀释溶液中具有相同的光学药物,其具有结构化的蓝色单体发射(λmax= 468,500,540nm)。当掺杂到OLED主体材料中,还观察到宽橙色聚集发射(λmax≈580nm)。随着掺杂水平增加,橙色带的强度相对于蓝色单体发射增加。单体与聚集发射的比例可以通过掺杂浓度,掺杂剂上的空间体积和通过选择主体材料来控制。单体和准分子带的掺杂浓度大致相等,给出了最接近标准白色照明源的发射光谱。用掺杂的CBP和MCP发光层制造涡流(CBP = N,N'-二氨基唑基-4,4'-Biphenyl,MCP = N,N'-二氨基唑基-3,5-苯)。当将电子/激子阻挡层(EBL)插入结构中,在空穴传输层和掺杂CBP或MCP层之间时,实现了最佳效率和颜色稳定性。用于这些装置中的EBL的材料是FAC-TRIS(1-苯基吡唑唑唑唑唑唑类铱(III)。 EBL材料有效地防止电子和激子通过发光层进入输送NPD层的空穴中。基于CBP的装置在500cd M-2的1d C-2的峰值外部量子效率为3.3±0.3%(7.3±0.7Lm W-1),2.3±0.2%(5.2±0.2%(5.2±0.3 LM W-1) 。基于MCP的器件的峰值外部量子效率为6.4%(12.2 LM W-1,17.0 CD A?1),CIE坐标为0.36,0.44和67的CRI为1 CD M-2(CIE =委托Internationale de L. U27EClairage,CRI =彩色渲染指数)。基于MCP的器件的效率降至500cd M-2的4.3±0.5%(8.1±0.6Lm W-1,11.3 CD A-1),然而,CIE坐标和CRI保持不变。

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