磷光
系统间交叉
合理设计
材料科学
分子内力
纳米颗粒
激发态
分子
平面的
纳米技术
聚集诱导发射
能量转移
荧光粉
光化学
光电子学
工作(物理)
动力学(音乐)
分子动力学
发光
化学
持续发光
咔唑
荧光
放松(心理学)
设计要素和原则
小分子
化学物理
作者
Junru Chen,Haiyang Wang,Liu X,Weifeng Nie,Zhenkai Na,Chongyang Zeng,Yingxiao Mu,Yanping Huo,Mingle Li,Xing Feng,Xiaojun Peng
摘要
ABSTRACT Visible‐light‐excited near‐infrared ultralong organic phosphorescence (NIR‐UOP), has attracted increasing attention due to its unique advantages. However, the development of efficient NIR‐UOP systems remains challenging. In this study, we propose a rational molecular design strategy to achieve visible‐light‐excited ( λ ex = 450 nm) NIR‐UOP via excited‐state conformational dynamics. The optimized molecule, py‐2mNO 2 , exhibits NIR‐UOP emission at 635 and 700 nm, with a high phosphorescence intensity of 12 cd/m 2 and a lifetime of 268 ms. Mechanistic studies reveal that the dynamic conformational charge transfer facilitates intersystem crossing (ISC). Meanwhile, the relatively flat excited‐state potential energy surface enables the molecule to adopt a planar conformation, thereby suppressing non‐radiative decay through intramolecular attractive interactions. Leveraging these properties, py‐2mNO 2 ‐based nanoparticles were assembled using a polymethyl methacrylate (PMMA) isolation strategy. Consequently, high‐contrast phosphorescence imaging of hypoxic tumors with a signal‐to‐background ratio (SBR) of 39.47 ( λ e x = 365 nm) was achieved using this matrix‐isolated phosphorescent nano‐assembly, which could even be excited with a commercial mobile phone flashlight (SBR = 14.55). This work not only provides a rational design strategy for visible‐light‐excited NIR‐UOP systems but also establishes an efficient nano‐assembly approach for constructing NIR‐UOP nanoparticles suitable for in vivo imaging.
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