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Synthesis, structure, properties, and application of a carbazole-based diaza[7]helicene in a deep-blue-emitting OLED

机译:咔唑基二氮杂[7]螺旋烯的合成,结构,性质及其在深蓝色发光OLED中的应用

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摘要

A carbazole-based diaza[7]helicene, 2,12-dihexyl-2,12-diaza[7]helicene (1), was synthesized by a photochemical synthesis and its use as a deep-blue dopant emitter in an organic light-emitting diode (OLED) was examined. Compound 1 exhibited good solubility and excellent thermal stability with a high decomposition temperature (T _d=372.1 °C) and a high glass-transition temperature (T _g, up to 203.0 °C). Single-crystal structural analysis of the crystalline clathrate (1) _2· cyclohexane along with a theoretical investigation revealed a non-planar-fused structure of compound 1, which prevented the close-packing of molecules in the solid state and kept the molecule in a good amorphous state, which allowed the optimization of the properties of the OLED. A device with a structure of ITO/NPB (50 nm)/CBP:5 % 1 (30 nm)/BCP (20 nm)/Mg:Ag (100 nm)/Ag (50 nm) showed saturated blue light with Commission Internationale de L'Eclairage (CIE) coordinates of (0.15, 0.10); the maximum luminance efficiency and brightness were 0.22 cd A ~(-1) (0.09 Lm W ~(-1)) and 2365 cd m ~(-2), respectively. This new class of helicenes, based on carbazole frameworks, not only opens new possibilities for utilizing helicene derivatives in deep-blue-emitting OLEDs but may also have potential applications in many other fields, such as molecular recognition and organic nonlinear optical materials.
机译:通过光化学合成合成了咔唑基二氮杂[7]螺旋,2,12-二己基-2,12-二氮杂[7]螺旋(1),并将其用作有机光环境中的深蓝色掺杂发射体。检查了发光二极管(OLED)。化合物1在高分解温度(T d = 372.1°C)和高玻璃化转变温度(T g,最高达203.0°C)下表现出良好的溶解性和出色的热稳定性。晶体笼形物(1)_2·环己烷的单晶结构分析以及理论研究表明,化合物1为非平面熔融结构,可防止固态分子紧密堆积并将分子保持在良好的非晶态,这可以优化OLED的性能。具有ITO / NPB(50 nm)/ CBP:5%1(30 nm)/ BCP(20 nm)/ Mg:Ag(100 nm)/ Ag(50 nm)结构的设备在Commission Internationale上显示了饱和蓝光de L'Eclairage(CIE)坐标为(0.15,0.10);最大亮度效率和亮度分别为0.22 cd A〜(-1)(0.09 Lm W〜(-1))和2365 cd m〜(-2)。这种基于咔唑骨架的新型螺旋结构,不仅为在深蓝色发光的OLED中利用螺旋结构衍生物提供了新的可能性,而且在分子识别和有机非线性光学材料等许多其他领域也具有潜在的应用前景。

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