聚合体中π桥介导的分子间和分子内电荷转移耦合,实现高效近红外发射

Aggregate Pub Date : 2024-07-22 DOI:10.1002/agt2.634
Jingyi Xu, Jie Xue, Yu Dai, Jinyuan Zhang, Jiajun Ren, Chengyu Yao, Shaman Li, Qingyu Meng, Xueliang Wen, Haoyun Shao, Juan Qiao
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引用次数: 0

摘要

分子间电荷转移(inter-CT)通常被认为可以淬灭分子聚集体中的发光,尤其是近红外(NIR)发射。在此,通过对供体/受体(D/A)分子中的π桥效应进行详细比较,我们发现 D/A 分子中的π桥对于分子间电荷转移在聚集体中的参与至关重要,从而诱导所需的热激活延迟荧光(TADF)并在很大程度上抑制非辐射衰减、更重要的是,电子捐献π桥对于通过有效的电子耦合与明亮的分子内电荷转移(intra-CT)最大限度地提高辐射衰减,从而实现以CT间为主导的高效近红外发射至关重要。作为概念验证,以噻吩基为 π 桥的 TPATAP 在固体薄膜中实现了显著的光致发光量子产率,在 788 纳米波长处达到 18.9%,并在器件中实现了创纪录的最高外部量子效率,在 785 纳米波长处达到 4.53%。这些发现为分子聚合体中 CT 间和 CT 内的相互作用提供了新的视角,并为减弱能隙定律的限制、开发高效近红外发光体以及提高各种 CT 间系统(如有机光伏、有机长持续发光等)的发光效率开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

π-Bridge mediated coupling between inter- and intra-molecular charge transfer in aggregates for highly efficient near-infrared emission

π-Bridge mediated coupling between inter- and intra-molecular charge transfer in aggregates for highly efficient near-infrared emission
Intermolecular charge transfer (inter-CT) is commonly considered to quench luminescence in molecular aggregates, especially for near-infrared (NIR) emission. Herein, by elaborate comparison of π-bridge effects in donor/acceptor (D/A) molecules, it is disclosed that a π-bridge is essential in D/A molecule to involve inter-CT in aggregates for inducing desired thermally activated delayed fluorescence (TADF) and largely suppressing non-radiative decays, and importantly, electron-donating π-bridge is critical to maximize radiative decay for inter-CT dominated emission by effective electronic coupling with bright intramolecular charge transfer (intra-CT) for high-efficiency NIR emission. As a proof-of-concept, TPATAP with thienyl as π-bridge realized prominent photoluminescence quantum yields of 18.9% at 788 nm in solid films, and achieved record-high maximum external quantum efficiencies of 4.53% at 785 nm in devices. These findings provide fresh insight into interplay between inter-CT and intra-CT in molecular aggregates and open a new avenue to attenuate the limitation of energy gap law for developing highly efficient NIR emitters and improving the luminescent efficiency of various inter-CT systems, such as organic photovoltaic, organic long persistent luminescence, etc.
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