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具有分层刚性化的树枝状封装实现了强大的溶液室温磷光、高效电致发光和超长余辉。

Dendronized Encapsulation with Hierarchical Rigidification Enabling Robust Solution Room-Temperature Phosphorescence, Efficient Electroluminescence and Ultralong Afterglow.

作者信息

Li Chensen, Lou Zhenchen, Hu Lianrui, Xie Guohua, Zhang Song, Xu Bo, Zhao Zheng, Lam Jacky W Y, Tang Ben Zhong

机构信息

Key Laboratory for Soft Chemistry and Functional Materials of Ministry of Education, School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, China.

Department of Chemistry and Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, The Hong Kong University of Science and Technology, Kowloon, Hong Kong, 999077, China.

出版信息

Adv Sci (Weinh). 2025 Aug 18:e11973. doi: 10.1002/advs.202511973.

Abstract

Organic room-temperature phosphorescence (RTP) materials face a fundamental challenge: their environment-specific phosphorescent behavior fundamentally conflicts with the growing demand for multifunctional materials. To overcome this limitation, a multiscale confinement strategy is developed that integrates intramolecular flexible encapsulation with intermolecular rigid immobilization. Dendronized donor-acceptor molecules are engineered with alkyl-chain-carbazole dendrons to achieve intramolecular encapsulation. This design enables abundant spatial interactions, balancing conformational flexibility (for solution processing) and emission rigidity. Multiscale confinement via molecular aggregation and poly(methyl methacrylate) (PMMA) doping further enhances rigidification. Together, these mechanisms suppress nonradiative transitions across four temporal orders of magnitude (10-10 s). The resulting material system exhibits unprecedented environment-adaptive RTP properties: 1) ≈9 ms solution-phase RTP lifetime under ambient conditions without deoxygenation, representing the longest lifetime among solution-dissolved RTP systems; 2) 72% photoluminescence quantum yield in doped films and 17.2% external quantum efficiency in organic light-emitting diodes (OLEDs), making them among the most efficient solution-processed RTP-OLEDs; 3) Ultralong afterglow with 1.16 s persistent RTP and 10 s naked-eye-detectable emission. Notably, this work represents the first demonstration of a single material simultaneously enabling solution-phase RTP, high-efficiency electroluminescence, and long afterglow. This intra/intermolecular engineering overcomes single-environment limitations, establishing universal design principles for adaptive luminescent materials in various optoelectronic applications.

摘要

有机室温磷光(RTP)材料面临着一个根本性挑战:其特定环境的磷光行为与对多功能材料日益增长的需求存在根本冲突。为了克服这一限制,开发了一种多尺度限制策略,该策略将分子内柔性封装与分子间刚性固定相结合。通过烷基链咔唑树枝状分子设计树枝状供体-受体分子,以实现分子内封装。这种设计能够实现丰富的空间相互作用,平衡构象灵活性(用于溶液加工)和发射刚性。通过分子聚集和聚甲基丙烯酸甲酯(PMMA)掺杂实现的多尺度限制进一步增强了刚性化。这些机制共同抑制了跨越四个时间量级(10-10秒)的非辐射跃迁。由此产生的材料体系展现出前所未有的环境适应性RTP特性:1)在环境条件下且无需脱氧时,溶液相RTP寿命约为9毫秒,是溶液溶解的RTP体系中最长的寿命;2)掺杂薄膜中的光致发光量子产率为72%,有机发光二极管(OLED)中的外量子效率为17.2%,使其成为最有效的溶液加工RTP-OLED之一;3)具有1.16秒持续RTP和10秒肉眼可检测发射的超长余辉。值得注意的是,这项工作首次证明了单一材料同时实现溶液相RTP、高效电致发光和长余辉。这种分子内/分子间工程克服了单一环境的限制,为各种光电子应用中的自适应发光材料建立了通用设计原则。

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