Effect of substitution position of dibenzofuran-terminated robust hole-transporters on physical properties and TADF OLED performances†

IF 3.2 3区 工程技术 Q2 CHEMISTRY, PHYSICAL Molecular Systems Design & Engineering Pub Date : 2022-11-30 DOI:10.1039/D2ME00225F
Shoki Abe, Hisahiro Sasabe, Takeru Nakamura, Misaki Matsuya, Yu Saito, Takanori Hanayama, Suguru Araki, Kengo Kumada and Junji Kido
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Abstract

Although the wide-energy-gap hole-transport layer (HTL) is a key material to realizing high-efficiency and long-lifetime phosphorescent and thermally activated delayed fluorescent (TADF) organic light-emitting devices (OLEDs), a limited number of HTLs have been explored in previous studies. Accordingly, dibenzofuran-end-capped HTLs show promising performance in realizing a maximum external quantum efficiency (EQE) of 20% and a long lifetime of over 20?000 h at 1000 cd cm?2 in phosphorescent and TADF OLEDs. This study investigates the effects of the substitution positions of TnDBFBP (n = 1–4) derivatives with four DBF-end-capping groups to extensively study the molecular design of robust multifunctional HTLs. TnDBFBP derivatives exhibited a high glass transition temperature (Tg) of ~149 °C, a triplet energy (ET) value of ~2.9 eV, and anionic bond dissociation energy of ~1.75 eV depending on the substitution positions. Consequently, T1DBFBP realized green TADF OLEDs with an EQE of over 20% and an operational lifetime of 50% of the initial luminance (LT50) of 30?000 h at 1000 cd m?2. These performances are among the best reported by previous studies.

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二苯并呋喃端端鲁棒空穴转运子取代位置对TADF OLED物理性能的影响
虽然宽能隙空穴传输层(HTL)是实现高效长寿命磷光和热激活延迟荧光(TADF)有机发光器件(oled)的关键材料,但以往研究中对HTL的探索数量有限。因此,二苯并呋喃端封的HTLs在实现20%的最大外量子效率(EQE)和超过20?000小时,1000厘米?2在磷光和TADF oled中。本研究研究了TnDBFBP (n = 1-4)衍生物与四个dbf末端旋盖基团的取代位置的影响,以广泛研究强效多功能HTLs的分子设计。TnDBFBP衍生物的玻璃化转变温度(Tg)为~149℃,三重态能(ET)值为~2.9 eV,阴离子键离解能为~1.75 eV,这取决于取代位置。因此,T1DBFBP实现了EQE超过20%的绿色TADF oled,其工作寿命为初始亮度(LT50) 30?在1000 CD / m下,000 h。这些表现是以前的研究报告中最好的。
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来源期刊
Molecular Systems Design & Engineering
Molecular Systems Design & Engineering Engineering-Biomedical Engineering
CiteScore
6.40
自引率
2.80%
发文量
144
期刊介绍: Molecular Systems Design & Engineering provides a hub for cutting-edge research into how understanding of molecular properties, behaviour and interactions can be used to design and assemble better materials, systems, and processes to achieve specific functions. These may have applications of technological significance and help address global challenges.
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