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含有一种新型可交联空穴传输材料与商用空穴传输材料混合的高效溶液处理有机发光二极管。

Highly Efficient Solution-Processed Organic Light-Emitting Diodes Containing a New Cross-linkable Hole Transport Material Blended with Commercial Hole Transport Materials.

作者信息

Ha Hyein, Shim Young Jae, Lee Da Hwan, Park Eun Young, Lee In-Ho, Yoon Seok-Keun, Suh Min Chul

机构信息

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.

出版信息

ACS Appl Mater Interfaces. 2021 May 12;13(18):21954-21963. doi: 10.1021/acsami.1c01835. Epub 2021 Apr 28.

DOI:10.1021/acsami.1c01835
PMID:33909414
Abstract

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.

摘要

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。

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