材料科学
聚氨酯
电致发光
有机发光二极管
异佛尔酮二异氰酸酯
发色团
聚合物
荧光
光电子学
量子效率
共发射极
纳米技术
异佛尔酮
模块化设计
电致发光显示器
分子工程
光致发光
荧光粉
氢键
作者
Caixia Yang,Wenzhong Bian,Shun Hu,Youqiang Qian,Mengting Li,Junyi Chen,Shuang Chen,Wenli Shi,Jiangqi Jiang,Hai Zhou,Xinxin Ban
标识
DOI:10.1021/acsami.5c26098
摘要
The development of intrinsically stretchable and self-healing electroluminescent materials has remained a critical challenge for next-generation skin-like displays and biointegrated optoelectronics. Here, we report the first dynamic bond-engineered thermally activated delayed fluorescence (TADF) polyurethane (PUCN-x) that combines practical stretchability, high efficiency, and a robust self-healing capability. By integrating a TADF emitter into a segmented polyurethane backbone synthesized with isophorone diisocyanate (IPDI) and tunable polyalcohol soft segments, we achieve simultaneous control over the chain mobility and chromophore stacking. The resulting material exhibits exceptional functional recovery─after being subjected to stretching, bending, or scratch damage─and the polymer consistently maintains high electroluminescent performance. It demonstrates efficient self-healing under mild conditions (50 °C) without compromising luminescence, achieving a peak external quantum efficiency (EQE) of 13.3%. Optimized PUCN-1 retains over 85% of its original EQE after multiple damage-healing cycles, highlighting outstanding operational resilience. This work establishes a versatile molecular design strategy for durable, high-performance TADF elastomers, paving the way toward reliable, flexible displays and lighting technologies.
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