材料科学
荧光团
量子产额
光致发光
荧光
猝灭(荧光)
聚合物
结晶
光化学
超分子化学
固态
动力学
超分子聚合物
衍生工具(金融)
化学工程
限制
发光
Crystal(编程语言)
产量(工程)
纳米技术
高分子化学
作者
Xue-Wei Wei,Cong Chen,Tianyu Wu,Li Xu,Xiaoyu Meng,H.. Ye
标识
DOI:10.1021/acsmacrolett.5c00696
摘要
Cyano-substituted oligo(p-phenylenevinylene) derivatives (cyano-OPVs) demonstrate superior photophysical properties in solution with photoluminescence quantum yield (PLQY) of up to 87% yet experience severe aggregation-caused quenching in the solid state (PLQY typically 20%-40%), fundamentally limiting their practical implementation in optoelectronic devices. Here, we present a novel approach to enhancing the solid-state PLQY of cyano-OPVs by harnessing polymer crystallization through supramolecular interactions. We designed and synthesized a 2-ureido-4[1H]-pyrimidinone (UPy)-functionalized cyano-OPV derivative (UPy-OPV-UPy) and incorporated it into a crystallizable UPy-terminated poly(butylene succinate) (PBS-UPy) matrix. Systematic investigation of the photophysical properties and isothermal crystallization kinetics of PBS-UPy/UPy-OPV-UPy blends revealed a remarkable solid-state PLQY of approximately 97%, surpassing both traditional solid-state fluorescent materials and solution-state performance. This unprecedented enhancement is attributed to the effect of crystallization-driven supramolecular reorganization, which disrupts unfavorable fluorophore aggregates. This nondestructive approach offers a new paradigm for designing high-performance solid-state emissive materials, potentially overcoming the persistent challenge of aggregation-caused quenching that typically limits solid-state fluorescent material performance.
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