Enhanced Efficiency in Green PhOLEDs Using a Simplified Three-Layer Architecture with Bipolar Carbazole–Quinazolinone Hosts

Hemant Keshari, Namira Ansari, Yi-Ting Chen, Yi-Qi Chao, Chih-Hao Chang*, Vipin Kumar, Prabhakar Chetti and Atul Chaskar*, 
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Abstract

With an aim to provide a balanced charge flux for enhanced PhOLED device efficiency, two novel bipolar host materials, 3-CBZ-QZ and 9-CBZ-QZ, incorporating carbazole and quinazolinone as the electron donor and acceptor, respectively, have been synthesized, characterized, and used as efficient host materials for phosphorescent devices. Furthermore, their photophysical, thermal, and electrochemical properties have been investigated to shed the importance on the structure–performance relationship. 3-CBZ-QZ and 9-CBZ-QZ have high triplet energies of 3.09 and 2.54 eV, respectively, which make them suitable host materials for green emitters in the emissive layer (EML). DFT studies reveal high charge mobilities for both synthesized molecules based on electron and hole reorganization energy calculations. This balanced charge-carrying capacity prompted us to fabricate simple three-layer devices with a single hole and electron transport layer across the EML. The 3-CBZ-QZ-based device resulted in a superior electroluminescent (EL) performance with a turn-on voltage of 2.6 V, a maximum luminance of 77973 cd/m2, a maximum power efficiency of 71.0 Im/W, and an EQE of 18.1%. Although devices with the 9-CBZ-QZ host demonstrated a lower EQE of 16.0%, it showed a higher luminance value of 91111 cd/m2 than 3-CBZ-QZ with a significantly lower efficiency roll-off at a higher practical luminance of 100 cd/m2. The EL characteristics significantly varied with the positional changes in the donor–acceptor linkage. Moreover, these recorded performances demonstrate the promising advantage of the carbazole–quinoxaline-based compounds in developing host materials for realizing efficient PhOLEDs.

Abstract Image

利用具有双极咔唑-喹唑啉酮宿主的简化三层结构提高绿色 PhOLED 的效率
为了提供平衡的电荷通量以提高磷光发光器件的效率,我们合成并表征了两种新型双极宿主材料 3-CBZ-QZ 和 9-CBZ-QZ,它们分别以咔唑和喹唑啉酮作为电子供体和受体,并将其用作磷光发光器件的高效宿主材料。此外,还研究了它们的光物理、热和电化学特性,以揭示结构-性能关系的重要性。3-CBZ-QZ 和 9-CBZ-QZ 分别具有 3.09 和 2.54 eV 的高三重能,因此适合作为发射层(EML)中绿色发光体的宿主材料。基于电子和空穴重组能的计算,DFT 研究揭示了这两种合成分子的高电荷迁移率。这种平衡的电荷携带能力促使我们制造出了简单的三层器件,在 EML 上只有一个空穴和电子传输层。基于 3-CBZ-QZ 的器件具有卓越的电致发光(EL)性能,其开启电压为 2.6 V,最大亮度为 77973 cd/m2,最大功率效率为 71.0 Im/W,EQE 为 18.1%。虽然使用 9-CBZ-QZ 主机的器件 EQE 较低,仅为 16.0%,但其亮度值却比 3-CBZ-QZ 高出 91111 cd/m2,而且在 100 cd/m2 的较高实际亮度条件下,效率衰减明显较低。电致发光特性随着供体-受体连接位置的变化而明显不同。此外,这些记录的性能表明,咔唑-喹喔啉基化合物在开发实现高效 PhOLED 的宿主材料方面具有广阔的前景。
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来源期刊
ACS Applied Optical Materials
ACS Applied Optical Materials 材料科学-光学材料-
CiteScore
1.10
自引率
0.00%
发文量
0
期刊介绍: ACS Applied Optical Materials is an international and interdisciplinary forum to publish original experimental and theoretical including simulation and modeling research in optical materials complementing the ACS Applied Materials portfolio. With a focus on innovative applications ACS Applied Optical Materials also complements and expands the scope of existing ACS publications that focus on fundamental aspects of the interaction between light and matter in materials science including ACS Photonics Macromolecules Journal of Physical Chemistry C ACS Nano and Nano Letters.The scope of ACS Applied Optical Materials includes high quality research of an applied nature that integrates knowledge in materials science chemistry physics optical science and engineering.
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