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Towards high-power-efficiency solution-processed OLEDs: Material and device perspectives

机译:迈向高功率效率解决方案处理的OLED:材料和设备的观点

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摘要

Solution-processed organic light-emitting diodes (s-OLEDs) have received a great deal of interest owing to the huge market application potentials as large-size, flexible, high-quality self-luminous display panels and lighting sources. It is anticipated that those electronic products can be easily manufactured by modern wet-processing techniques, e.g. ink-jet printing and 'roll-to-roll' coating methods. However, issues related to power efficiency (PE) are highly hampering the progress of s-OLEDs towards real applications. Herein, we will demonstrate current development of s-OLEDs targeting for high PE with emphasis on introducing (ⅰ) theoretical and practical significance in simultaneously achieving close-to-unity ( ~ 100 %) exciton emission and low driving voltage realized by advanced interface modification, bipolar-transporting-type host, all-exciton-harvesting emissive material and customized device architectures to integrate their functions, (ⅱ) novel low-driving-voltage techniques for phosphorescent and thermally activated delayed fluorescence (TADF) s-OLEDs, i.e. barrier-free ex-ciplex host or bipolar co-host scaffold, and charge-trapping- or charge-scattering-free emissive layer (EML) structures by matching the frontier molecular orbitals (FMOs) between host and dopant emitters, (ⅲ) a variety of tactics to effectively alleviate the efficiency roll-off issue at the practically high luminance value, e.g. removing or largely restraining exciton-quenching in the EML and/or interfaces, the utilization of novel emitters with fast radiative decay rate and/or the EML architectures with prompt and efficient Forster energy transfer process.
机译:由于大尺寸,柔性,高质量的自发光显示面板和光源等巨大的市场应用潜力,溶液处理的有机发光二极管(s-OLED)引起了人们的极大兴趣。可以预期,这些电子产品可以很容易地通过现代的湿法处理技术,例如
湿法制造。喷墨印刷和“卷对卷”涂布方法。但是,与功率效率(PE)有关的问题在很大程度上阻碍了s-OLED向实际应用的发展。在这里,我们将展示针对高PE的s-OLED的当前发展,重点介绍在同时实现接近统一(〜100%)的激子发射和通过先进的接口修改实现的低驱动电压方面的(ⅰ)理论和实践意义。 ,双极运输型主体,全激子发射材料和定制的设备架构以整合其功能,(ⅱ)用于磷光和热激活延迟荧光(TADF)s-OLED的新型低驱动电压技术,即势垒通过匹配主体和掺杂发射体之间的前沿分子轨道(FMO),实现无游离的ex-ciplex主体或双极共主体支架以及无电荷陷阱或无电荷散射的发射层(EML)结构,有效减轻实际值较高的亮度下的效率下降问题的策略,例如消除或很大程度上限制了EML和/或界面中的激子猝灭,利用了具有快速辐射衰减率的新型发射器和/或具有快速有效的Forster能量转移过程的EML体系结构。

著录项

  • 来源
    《Materials Science & Engineering》 |2020年第4期|100547.1-100547.61|共61页
  • 作者单位

    State Key Laboratory of Polymer Physics and Chemistry Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 PR China;

    Department of Applied Biology and Chemical Technology The Hong Kong Polytechnic University (PolyU) Hung Horn Hong Kong PR China PolyU Shenzhen Research Institute Shenzhen 518057 PR China;

    State Key Laboratory of Polymer Physics and Chemistry Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 PR China Center for Advanced Analytical Science c/o School of Chemistry and Chemical Engineering Guangzhou University Guangzhou 510006 PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    OLED; Solution-process; Power efficiency; TADF; Phosphorescence;

    机译:OLED;解决过程;电源效率;TADF;磷光;
  • 入库时间 2022-08-18 05:24:09

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