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利用复合色彩转换膜实现白色有机电致发光   总被引:1,自引:1,他引:0  
利用蓝色有机发光二极管激发荧光色彩转换膜的方法,制备了一种新型的白色有机电致发光器件.蓝色有机发光二极管的发光层采用在4,4′-Bis(carbazol-9-yl)biphenyl(CBP)主体中掺杂高效蓝色荧光染料N-(4-((E)-2-(6-((E)-4-(diphenylamino)styryl)naphthalen-2-yl)vinyl)phenyl)-N-phenylbenzenamine(N-BDAVBi)来制备.有机/无机复合色彩转换膜是将有机荧光颜料VQ-D25和无机荧光粉钇铝石榴石(YAG)按一定的重量比均匀分散到-[CH3CH2COOCH3]n-(PMMA)中经涂敷、固化而成.通过与单纯有机或无机色彩转换膜的比较及调整复合转换膜本身的厚度和荧光颜料的掺杂比例来优化白光器件的发光光谱,获得了色稳定性较高的白色有机电致发光器件.当驱动电压由6V升至14V时,器件的色坐标仅在(0.354,0.304)和(0.357,0.312)之间变化,其最高电流效率约为5.8cd/A(4.35mA/cm2),最高亮度为16800cd/m2(14V).  相似文献   
2.
We demonstrate that the electroluminescent performances of organic light-emitting diodes (OLEDs) are significantly improved by evaporating a thin F4-TCNQ film as an anode buffer layer on the ITO anode. The optimum Alq3-based OLEDs with F4-TCNQ buffer layer exhibit a lower turn-on voltage of 2.6 V, a higher brightness of 39820cd/m^2 at 13 V, and a higher current efficiency of 5.96cd/A at 6 V, which are obviously superior to those of the conventional device (turn-on voltage of 4.1 V, brightness of 18230cd/m^2 at 13 V, and maximum current efficiency of 2.74calla at 10 V). Furthermore, the buffered devices with F4-TCNQ as the buffer layer could not only increase the efficiency but also simplify the fabrication process compared with the p-doped devices in which F4-TCNQ is doped into β-NPB as p-HTL (3.11 cd/A at 7 V). The reason why the current efficiency of the p-doped devices is lower than that of the buffered devices is analyzed based on the concept of doping, the measurement of absorption and photoluminescence spectra of the organic materials, and the current density-voltage characteristics of the corresponding hole-only devices.  相似文献   
3.
利用蓝色有机发光二极管激发荧光色彩转换膜的方法,制备了一种新型的白色有机电致发光器件。蓝色有机发光二极管的发光层采用4,4’-Bis(carbazol-9-yl)biphenyl(CBP)主体掺杂高效蓝色荧光染料N-(4-((E)-2-(6-((E)-4-(diphenylamino)styryl)naphthalen-2-yl)vinyl)phenyl)-N-phenylbenzenamine (N-BDAVBi)来制备。有机/无机复合色彩转换膜是将有机荧光颜料VQ-D25和无机荧光粉掺铈钇铝石榴石(YAG∶Ce3+)按一定的重量比均匀分散到-[CH3CH2COOCH3]n-(PMMA)中来制备。获得了色稳定性较高的白色有机电致发光器件。当驱动电压由6升至14 V时,器件光谱非常稳定且CIE色坐标仅从(0.354,0.304)变化到(0.357,0.312),其最高电流效率约为5.8 cd·A-1(4.35 mA·cm-2),最高亮度为16 800 cd·m-2(14 V)。  相似文献   
4.
利用蓝色有机发光二极管激发荧光色彩转换膜的方法,制备了一种新型的白色有机电致发光器件.蓝色有机发光二极管的发光层采用在4,4′-Bis(carbazol-9-yl)biphenyl(CBP)主体中掺杂高效蓝色荧光染料N-(4-((E)-2-(6-((E)-4-(diphenylamino)styryl)naphthalen-2-yl)vinyl)phenyl)-N-phenylbenzenamine (N-BDAVBi)来制备.有机/无机复合色彩转换膜是将有机荧光颜料VQ-D25和无机荧光粉钇铝石榴石(YAG)按一定的重量比均匀分散到-[CH3CH2COOCH3]n- (PMMA)中经涂敷、固化而成.通过与单纯有机或无机色彩转换膜的比较及调整复合转换膜本身的厚度和荧光颜料的掺杂比例来优化白光器件的发光光谱,获得了色稳定性较高的白色有机电致发光器件.当驱动电压由6 V升至14 V时,器件的色坐标仅在(0.354,0.304)和(0.357,0.312)之间变化,其最高电流效率约为5.8 cd/A(4.35 mA/cm2),最高亮度为16 800 cd/m2(14 V).  相似文献   
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