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Updated: Jan 23, 2026

High Resolution Phonon-assisted Quasi-resonance Fluorescence Spectroscopy
Published on: June 28, 2016
Ultrafast Carrier Dynamics of Nonfullerene Acceptors with Different Exciton-Phonon Coupling: Impact of Intramolecular
Yan Xie1, Feijun Huang1, Xinming Zheng2
1School of Physics and Astronomy, Applied Optics Beijing Area Major Laboratory, Center for Advanced Quantum Studies, Beijing Normal University, Beijing 100875, China.
Abstract:
In organic solar cells (OSCs), strong exciton-vibration (exciton-phonon) coupling can hinder exciton transport, thereby limiting exciton dissociation and resulting in significant nonradiative recombination energy losses. Here, we investigate the suppression of exciton-phonon coupling in OSCs by modulating intramolecular noncovalent interactions. Using three non-fused-ring electron acceptors, TT-O-2F, TT-S-2F, and TT-Se-2F, we reveal an intrinsic correlation between molecular conformation and exciton-phonon coupling. Experimental results elucidate that TT-S-2F and TT-Se-2F, featuring intramolecular S···O and Se···O noncovalent interactions, exhibit quasi-planar backbones that weaken exciton-phonon coupling, whereas TT-O-2F exhibits a twisted backbone. When blended with the polymer donor D18, TT-S-2F delivers superior hole transfer efficiency (84.67%) and Förster resonance energy transfer efficiency (53.80%), leading to the highest power conversion efficiency of 15.29%. These findings demonstrate that intramolecular noncovalent interactions can significantly enhance molecular planarity and effectively mitigate exciton-phonon coupling, which promotes charge transfer and separation, offering a molecular design strategy for high-efficiency OSCs.
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