Lee Tsang-Chi, Chang Chiung-Fang, Chiu Yuan-Chieh, Chi Yun, Chan Tzu-Ying, Cheng Yi-Ming, Lai Chin-Hung, Chou Pi-Tai, Lee Gene-Hsiang, Chien Chen-Han, Shu Ching-Fong, Leonhardt Jens
Department of Chemistry, National Tsing Hua University, Hsinchu 300, Taiwan.
Chem Asian J. 2009 May 4;4(5):742-53. doi: 10.1002/asia.200800468.
Rational design and synthesis of Ir(III) complexes (1-3) bearing two cyclometalated ligands (C--N) and one 2-(diphenylphosphino)phenolate chelate (P--O) as well as the corresponding Ir(III) derivatives (4-6) with only one (C--N) ligand and two P--O chelates are reported, where (C--NH)=phenylpyridine (ppyH), 1-phenylisoquinoline (piqH), and 4-phenylquinazoline (nazoH). Single crystal X-ray diffraction studies of 3 reveal a distorted octahedral coordination geometry, in which two nazo ligands adopt an eclipsed configuration, with the third P--O ligand located trans to the phenyl group of both nazo ligands, confirming the general skeletal pattern for 1-3. In sharp contrast, complex 4 reveals a trans-disposition for the PPh2 groups, along with the phenolate groups residing opposite the unique cyclometalated ppy ligand, which is the representative structure for 4-6. These Ir(III) complexes exhibit green-to-red photoluminescence with moderate to high quantum efficiencies in the degassed fluid state and bright emission in the solid state. For 1-6, the resolved emission spectroscopy and relaxation dynamics are well rationalized by the computational approach. OLEDs fabricated using 12 wt. % of 3 doped in CBP and with BCP as hole blocking material, give bright electroluminescence with lambda(max)=628 nm and CIE(xy) coordinates (0.65, 0.34). The turn-on voltage is 3.2 V, while the current efficiency and the power efficiency reach 11.2 cd A(-1) and 4.5 lm W(-1) at 20 mA cm(-2). The maximum efficiency reaches 14.7 cd A(-1)and 6.8 lm W(-1) upon switching to TPBI as hole blocking material. For evaluating device lifespan, the tested device incorporating CuPc as a passivation layer, 3 doped in CTP as an emitting layer, and BAlq as hole blocking material, shows a remarkably long lifetime up to 36,000 h at an initial luminance of 500 cd m(-2).
报道了带有两个环金属化配体(C--N)和一个2-(二苯基膦基)酚盐螯合物(P--O)的Ir(III)配合物(1 - 3)以及相应的仅带有一个(C--N)配体和两个P--O螯合物的Ir(III)衍生物(4 - 6)的合理设计与合成,其中(C--NH)=苯基吡啶(ppyH)、1-苯基异喹啉(piqH)和4-苯基喹唑啉(nazoH)。对3的单晶X射线衍射研究揭示了一种扭曲的八面体配位几何结构,其中两个nazo配体呈重叠构型,第三个P--O配体位于两个nazo配体苯基的反位,证实了1 - 3的一般骨架模式。形成鲜明对比的是,配合物4中PPh2基团呈反式排列,酚盐基团位于与独特的环金属化ppy配体相对的位置,这是4 - 6的代表性结构。这些Ir(III)配合物在脱气流体状态下呈现从绿色到红色的光致发光,具有中等到高的量子效率,在固态下发射明亮。对于1 - 6,通过计算方法很好地解释了分辨的发射光谱和弛豫动力学。使用12 wt.%的3掺杂在CBP中并以BCP作为空穴阻挡材料制备的OLED,发出明亮的电致发光,λ(max)=628 nm,CIE(xy)坐标为(0.65, 0.34)。开启电压为3.2 V,而在20 mA cm(-2)时电流效率和功率效率分别达到为11.2 cd A(-1)和4.5 lm W(-1)。切换到TPBI作为空穴阻挡材料时,最大效率达到14.7 cd A(-1)和6.8 lm W(-1)。为了评估器件寿命,测试的器件包含作为钝化层的CuPc、作为发光层的掺杂在CTP中的3以及作为空穴阻挡材料的BAlq,在初始亮度为500 cd m(-2)时显示出长达36,000小时的显著长寿命。