Ha Hyein, Shim Young Jae, Lee Da Hwan, Park Eun Young, Lee In-Ho, Yoon Seok-Keun, Suh Min Chul
Organic Electronic Materials Laboratory, Department of Information Display, Kyung Hee University, Seoul 02447, Korea.
P&H Tech Company Ltd., Daewoo Frontier Valley, 16-25 Giheung-Gu, Yongin-Si 17015, Gyeonggi-Do, Korea.
ACS Appl Mater Interfaces. 2021 May 12;13(18):21954-21963. doi: 10.1021/acsami.1c01835. Epub 2021 Apr 28.
A new small-molecular thermally cross-linkable material {[4-(9-phenyl-9-carbazol-4-yl)phenyl]-bis-(4'-vinylbiphenyl-4-yl)-amine} (PCP-bis-VBPA, PbV) containing the styrene moiety was synthesized for hole transport layers in wet processed organic light-emitting diodes (OLEDs). It was found that PbV exhibited relatively high glass temperatures above 154 °C and a triplet energy () greater than 2.81 eV. This new synthetic hole transport material (HTM) forms very uniform films after cross-linking reaction with little pin-holes, although it was small-molecule-based cross-linkable HTM. However, to solve the certain minor non-uniformity caused by pinholes with various sizes, a semi-interpenetrating network was formed with well-known polymeric HTM with high mobility [e.g., poly(9,9-dioctylfluorene---(4-butylphenyl)diphenyl amine), TFB, or poly(,'-bis-4-butylphenyl-,'-bisphenyl)benzidine, poly-TPD]. As a result, we successfully fabricated red phosphorescent OLED showing an efficiency of about 16.7 cd/A and 12.4% (external quantum efficiency) if we applied PbV blended with 20% of TFB or poly-TPD. In particular, the efficiency and lifetime are significantly improved by 1.5 and 4.5 times, respectively, compared to those of the control device without using blended HTM.
一种含有苯乙烯部分的新型小分子热交联材料{[4-(9-苯基-9-咔唑-4-基)苯基]-双-(4'-乙烯基联苯-4-基)-胺}(PCP-双-VBPA,PbV)被合成用于湿法处理有机发光二极管(OLED)的空穴传输层。发现PbV表现出高于154℃的相对较高玻璃化温度和大于2.81eV的三线态能量()。这种新型合成空穴传输材料(HTM)在交联反应后形成非常均匀的薄膜,几乎没有针孔,尽管它是基于小分子的可交联HTM。然而,为了解决由各种尺寸针孔引起的某些轻微不均匀性,与具有高迁移率的著名聚合物HTM[例如聚(9,9-二辛基芴-(4-丁基苯基)二苯胺),TFB,或聚(,'-双-4-丁基苯基-,'-双苯基)联苯胺,聚-TPD]形成半互穿网络。结果,如果我们应用与20%的TFB或聚-TPD混合的PbV,我们成功制造出了效率约为16.7cd/A和12.4%(外量子效率)的红色磷光OLED。特别是,与不使用混合HTM的对照器件相比,效率和寿命分别显著提高了1.5倍和4.5倍。