Jiang He, Cao Yang, Yang Qingqing, Xian Lijie, Tao Ye, Chen Runfeng, Huang Wei
Key Laboratory for Organic Electronics and Information Displays & Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.
Frontiers Science Center for Flexible Electronics (FSCFE), Shaanxi Institute of Flexible Electronics (SIFE) & Shaanxi Institute of Biomedical Materials and Engineering (SIBME), Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi'an 710072, China.
J Phys Chem Lett. 2020 Sep 17;11(18):7739-7754. doi: 10.1021/acs.jpclett.0c01571. Epub 2020 Sep 1.
Organic optoelectronic molecules with resonance effects are a striking class of functional materials that have witnessed booming progress in recent years. Various resonances induced by particularly constructed molecular structures can effectively influence key photophysical processes to afford particular optoelectronic properties of the organic resonance materials. The charge transport behaviors were tuned to be dynamic and self-adaptive; emission spectra were made to be very narrow with high color purity; optical bandgaps were significantly reduced, and intersystem crossing was greatly promoted. Therefore, great success has been achieved in various optoelectronic devices by using organic resonance materials to function as smart host materials with high triplet energies, highly luminescent emitters with high quantum yields and narrow emission bands, efficient organic afterglow molecules, and sensitive fluorescent probes. In this Perspective, material design principles, molecular structures and properties, and device performance of organic resonance materials are highlighted and future directions and challenges for this series of amazing materials are discussed.
具有共振效应的有机光电子分子是一类引人注目的功能材料,近年来取得了蓬勃发展。特别构建的分子结构所诱导的各种共振能够有效地影响关键的光物理过程,从而赋予有机共振材料特定的光电特性。电荷传输行为被调整为动态且自适应的;发射光谱变得非常窄,色纯度高;光学带隙显著减小,系间窜越得到极大促进。因此,通过使用有机共振材料作为具有高三重态能量的智能主体材料、具有高量子产率和窄发射带的高发光效率发光体、高效的有机余辉分子以及灵敏的荧光探针,在各种光电器件中都取得了巨大成功。在这篇综述中,重点介绍了有机共振材料的材料设计原理、分子结构与性质以及器件性能,并讨论了这一系列令人惊叹的材料的未来发展方向和挑战。