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Updated: Oct 9, 2026

Time-resolved Photophysical Characterization of Triplet-harvesting Organic Compounds at an Oxygen-free Environment Using an iCCD Camera
Published on: December 27, 2018
Mode-Selective C═C and C─N Vibrational Coupling Modulates Nonradiative Decay in Regioisomeric Organic Phosphorescent
Xiandong Chen1, Yongfeng Zhang2, Quangen Zhang1
1School of Chemistry and Materials Engineering, Wenzhou University, Wenzhou, P. R. China.
Abstract:
Structural isomerization has emerged as an effective strategy for improving the performance of organic room-temperature phosphorescent materials, but reported explanations are mainly attributed to differences in molecular packing, spin-orbit coupling, excited-state electronic configurations, etc. The intrinsic vibrational differences encoded in the molecular structures of isomers, which may fundamentally govern triplet-state excitons' nonradiative behaviors, remain largely unexplored. Here, we construct five phosphorescent molecular structural isomerization pairs based on both purely hydrocarbon and heteroatom-containing aromatic compounds, elucidating how regioisomerization redistributes local aromatic character and skeletal rigidity, thereby selectively suppressing the dominant dissipative vibrational modes (C═C and C─N) in the triplet state. This selective vibrational restriction effectively reduces nonradiative decay loss and ultimately determines the efficiency and lifetime of triplet excitons. The representative regioisomeric phosphor further demonstrates long-lived bioimaging capability with an extended in vivo imaging window, highlighting the practical relevance of this design strategy. This work identifies dominant vibrational coordinates as the primary origin of isomer-dependent RTP behaviors and establishes a vibrationally resolved mechanistic framework for excited-state relaxation engineering.
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