共晶
磷光
发光
材料科学
光致发光
二亚胺
激子
放射发光
光化学
光电子学
荧光
荧光粉
晶体工程
受激发射
闪烁体
电致发光
持续发光
超分子化学
有机半导体
单重态
发色团
分子工程
分子开关
并五苯
作者
Yuxizi Guo,Hongyang Hong,Yuanji Ye,Qi Xu,Hongming Chen,Mei‐Jin Lin
摘要
ABSTRACT Smart stimuli‐responsive luminescent materials with programmable and reversible emission are highly desirable for intelligent imaging and information security. Stimuli‐responsive organic materials utilizing triplet excitons are particularly attractive owing to their pronounced sensitivity to solid‐state packing. However, crystallinity‐preserving reversible structural switching that enables simultaneous control over X‐ray‐excited luminescence (scintillation) remains largely unexplored. Herein, donor‐acceptor halogen‐bonded cocrystals were constructed using N , N ′‐bis(n‐butyl)pyromellitic diimide (Bu 2 PMDI) and 3,6‐dibromocarbazole (Br 2 Cz) or 3,6‐diiodocarbazole (I 2 Cz). The green cocrystal Bu 2 PMDI‐Br 2 Cz‐G exhibits room‐temperature phosphorescence (RTP) and bright radioluminescence, whereas its orange polymorph is nearly non‐emissive. In contrast, the I 2 Cz‐based cocrystal displays thermally activated delayed fluorescence (TADF), representing an alternative triplet exciton utilization pathway. Notably, mild organic‐vapor stimulation triggers reversible order‐to‐order polymorphic interconversion of Bu 2 PMDI‐Br 2 Cz, which reorganizes halogen‐bonding motifs and, thus achieves crystallinity‐retained “on/off” switching of radioluminescence. Benefiting from efficient triplet exciton utilization, Bu 2 PMDI‐Br 2 Cz‐G enables high‐resolution static X‐ray imaging (37 lp mm −1 ) and real‐time dynamic imaging (2 K, 60 fps) with negligible afterglow. Furthermore, the reversible solvent‐triggered luminescence switching facilitates rewritable multimodal information encryption by integrating photoluminescence and radioluminescence as orthogonal readout channels. This work demonstrates cocrystal engineering as a powerful strategy for reversibly programming triplet‐exciton emission and X‐ray scintillation via structural switching in organic solids.
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