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用于可见光激活的超长余辉发光的磁共振热激活延迟荧光分子掺杂激基复合物中的逐步电荷/能量转移

Stepwise Charge/Energy Transfer in MR-TADF Molecule-Doped Exciplex for Ultralong Persistent Luminescence Activated with Visible Light.

作者信息

Jin Pengfei, Wei Xiaofang, Yin Baipeng, Xu Lixin, Guo Yunlong, Zhang Chuang

机构信息

Beijing National Laboratory for Molecular Sciences, Institute of Chemistry Chinese Academy of Sciences, Beijing, 100190, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2024 Jul;36(30):e2400158. doi: 10.1002/adma.202400158. Epub 2024 Jun 14.

DOI:10.1002/adma.202400158
PMID:38847332
Abstract

Organic long-persistent luminescence (OLPL), which relies on energy storage for delayed light emission by the charge separation state, has attracted intense attention in various optical applications. However, charge separation (CS) is efficient only under ultraviolet excitation in most OLPL systems because it requires a driving force from the large energy difference between the local excited (LE) and charge transfer (CT) states. In this study, a multiresonance thermally activated delayed fluorescence (MR-TADF) molecule is incorporated into an exciplex system to achieve efficient OLPL in a composite material activated by visible light via a stepwise charge/energy transfer process. The enhanced absorption of the composite material facilitated a tenfold increase in the duration of the OLPL, which can last for several hours under visible light excitation. The excited state of the MR-TADF molecule tends to charge transfer to the acceptor, followed by energy transfer to the exciplex, which benefits from the small difference between the LE and CT states owing to the inherent CS characteristics of the opposing resonance effect. Afterglow displays of these composite materials are fabricated to demonstrate their considerable potential in encryption patterns and emergency lights, which take advantage of their excellent processability, visible light activation, and tunable luminescence properties.

摘要

有机长余辉发光(OLPL)通过电荷分离态进行能量存储以实现延迟发光,在各种光学应用中引起了广泛关注。然而,在大多数OLPL系统中,电荷分离(CS)仅在紫外激发下有效,因为它需要由局域激发(LE)态和电荷转移(CT)态之间的大能量差提供驱动力。在本研究中,将一种多共振热激活延迟荧光(MR-TADF)分子引入激基复合物体系,通过逐步的电荷/能量转移过程,在可见光激活的复合材料中实现高效OLPL。复合材料吸收的增强使OLPL持续时间增加了十倍,在可见光激发下可持续数小时。MR-TADF分子的激发态倾向于将电荷转移到受体,随后能量转移到激基复合物,这得益于由于相反共振效应的固有CS特性导致的LE和CT态之间的小差异。制备了这些复合材料的余辉显示器,以展示它们在加密图案和应急灯方面的巨大潜力,这利用了它们优异的可加工性、可见光激活和可调谐发光特性。

相似文献

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