Kang Shin-Woo, Bae Eun-Jeong, Park Young-Wook, Ju Byeong-Kwon
Display and Nanosensor Laboratory, Department of Electrical Engineering, Korea University, 145, Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.
Nano and Organic-Electronics Laboratory, Department of Display and Semiconductor Engineering, Sun Moon University, Asan 31460, Republic of Korea.
Nanomaterials (Basel). 2023 Aug 17;13(16):2357. doi: 10.3390/nano13162357.
In this study, various diffusers are applied to highly efficient ultra-thin emission layer (EML) structure-based blue phosphorescent organic light-emitting diodes (PHOLEDs) to improve the electroluminescence (EL) characteristics and viewing angle. To achieve highly efficient blue PHOLEDs, the EL characteristics of ultra-thin EML PHOLEDs with the various diffusers having different structures of pattern-shape (hemisphere/sphere), size (4~75 μm), distribution (surface/embedded), and packing (close-packed/random) were systematically analyzed. The diffusers showed different enhancements in the overall EL characteristics of efficiencies, viewing angle, and others. The EL characteristics showed apparent dependency on their structure. The external quantum efficiency (EQE) was enhanced mainly by following the orders of pattern, size, and shape. Following the pattern size, the EQE enhancement gradually increased; the largest-sized diffuser with a 75 μm closed-packed hemisphere (diffuser-1) showed a 1.47-fold EQE improvement, which was the highest. Meanwhile, the diffuser with a ~7 μm random embedded sphere with a low density (diffuser 5) showed the lowest 1.02-fold-improved EQE. The reference device with ultra-thin EML structure-based blue PHOLEDs showed a maximum EQE of 16.6%, and the device with diffuser 1 achieved a maximum EQE of 24.3% with a 5.1% wider viewing angle compared to the reference device without a diffuser. For the in-depth analysis, the viewing angle profile of the ultra-thin EML PHOLED device and fluorescent green OLEDs were compared. As a result, the efficiency enhancement characteristics of the diffusers show a difference in the viewing angle profile. Finally, the application of the diffuser successfully demonstrated that the EL efficiency and viewing angle could be selectively improved. Additionally, we found that it was possible to realize a wide viewing angle and achieve considerable EQE enhancement by further investigations using high-density and large-sized embedded structures of light-extraction film.
在本研究中,将各种漫射器应用于基于高效超薄发光层(EML)结构的蓝色磷光有机发光二极管(PHOLED),以改善其电致发光(EL)特性和视角。为了实现高效蓝色PHOLED,系统地分析了具有不同图案形状(半球形/球形)、尺寸(4~75μm)、分布(表面/嵌入式)和堆积方式(密排/随机)的各种漫射器的超薄EML PHOLED的EL特性。漫射器在效率、视角等整体EL特性方面表现出不同程度的增强。EL特性明显依赖于它们的结构。外量子效率(EQE)主要按照图案、尺寸和形状的顺序得到提高。按照图案尺寸,EQE的提高逐渐增加;尺寸最大的75μm密排半球形漫射器(漫射器-1)的EQE提高了1.47倍,为最高。同时,具有低密度的约7μm随机嵌入式球形漫射器(漫射器5)的EQE提高倍数最低,为1.02倍。基于超薄EML结构的蓝色PHOLED的参考器件的最大EQE为16.6%,而带有漫射器1的器件实现了24.3%的最大EQE,与没有漫射器的参考器件相比,视角宽了5.1%。为了进行深入分析,比较了超薄EML PHOLED器件和荧光绿色OLED的视角分布。结果,漫射器的效率增强特性在视角分布上存在差异。最后,漫射器的应用成功证明了可以选择性地提高EL效率和视角。此外,我们发现通过使用光提取膜的高密度和大尺寸嵌入式结构进行进一步研究,有可能实现宽视角并实现可观的EQE增强。