磷光
化学
荧光粉
猝灭(荧光)
量子产额
兴奋剂
离子键合
光化学
热稳定性
量子
发光
持续发光
光电子学
产量(工程)
激子
理论(学习稳定性)
化学物理
热的
聚合物
量子效率
分子
量子位元
作者
Zhenyi He,Jialin Qin,Chunli Li,Yumo Dong,Jinming Song,Zizhao Huang,He Tian,Xiang Ma
摘要
Phosphorescence, stemming from triplet excitons, is highly susceptible to thermal quenching as elevated temperatures trigger nonradiative transitions. Achieving efficient and persistent organic phosphorescence under extreme heat remains a formidable challenge. We introduce a dehydration-shrinkage strategy to obtain doped organic phosphorescence systems with extreme-temperature tolerance, which achieves gradual anchoring of the phosphors within the ionic network of hydrated sodium borate. These doped systems exhibit efficient phosphorescence spanning 400 to 680 nm at room temperature and 573 K, achieving a phosphorescence quantum yield of 81.2% and a lifetime of 1.64 s at room temperature. Remarkably, the doped systems can remain operational for at least 6 months at 573 K. Mechanistic studies reveal that temperature-induced water departure triggers network shrinkage, which rigidifies the local environment and suppresses triplet exciton deactivation, thereby stabilizing the phosphorescence. This strategy opens a perspective for constructing high-temperature phosphorescent materials, safety indicators, and information security devices.
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