磷光
系统间交叉
光化学
余辉
单重态
材料科学
超快激光光谱学
单重态裂变
激发态
量子产额
内部转换
单体
化学
聚合物
三重态
荧光粉
芳香性
吸收(声学)
飞秒
持续发光
戒指(化学)
亮度
带隙
有机发光二极管
作者
Jinming Song,Fangming Zhao,Hao Su,Ruizhi Yang,Chunyan Xie,Biao Chen,Xueyu Li,Meng Zhou,Guoqing Zhang,Yi Luo,Ben Zhong Tang,Xuepeng Zhang
标识
DOI:10.1002/anie.202520738
摘要
Bonding aromatic ring to carbonyl group is recognized as crucial for promoting intersystem crossing (ISC) owing to allowed 1nπ* → 3ππ* or 1ππ* → 3nπ* transition. The effect of charge transfer (CT) in such systems, however, is largely ignored for understanding ISC and phosphorescence efficiency. Here, we unveiled a principle for producing highly-efficient room-temperature phosphorescence (RTP) polymer where the role of CT in diarylketone phosphors was a prerequisite. Designed diarylketones with carbonyl group substituted by aromatic rings unsymmetrically achieved superior RTP quantum yield of >30% in copolymer. Detailed investigation indicated that 1CT→3LE (locally excited triplet state) transition with small energy gap (∆EST) and strong spin-orbit coupling underlies their ultrafast ISC, as recorded by femtosecond transient absorption (fs-TA) spectroscopy. When single aromatic ring was bonded to carbonyl group, singlet (S1) and triplet (T1) states remained LE with large ∆EST and weak spin-orbit coupling, leading to low RTP efficiency. Finally, manufacturing organic glass in presence of trace diarylketone monomers could generate shape-rich three-dimensional (3D) objects with intense afterglow under room lighting, even at high-temperature and wet conditions. This work advances understanding on structure-property relationship in popular aromatic ketone phosphors, and paves the way for producing afterglow materials with high brightness and stability.
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