Phun Gabriel S, Kern Dana B, Sfeir Matthew Y, Azoulay Jason D, Wong Bryan M
Department of Chemistry, Department of Physics & Astronomy, and Materials Science & Engineering Program, University of California-Riverside, Riverside, California 92521, United States.
Materials Science Center, National Renewable Energy Laboratory, Golden, Colorado 80401, United States.
Chem Mater. 2025 May 14;37(10):3769-3775. doi: 10.1021/acs.chemmater.5c00311. eCollection 2025 May 27.
Conjugated polymers offer unprecedented chemical tunability for modulating energy transfer in a multitude of infrared light applications. In this work, we use a combination of time-resolved spectroscopic experiments and nonadiabatic molecular dynamics calculations to probe the photochemistry and nonradiative transitions in a recently synthesized narrow bandgap donor-acceptor conjugated polymer based on alternating cyclopentadithiophene and electronegative benzothiadiazole heterocycles. Using large-scale semi-empirical nonadiabatic molecular dynamics, which can treat a large 260-atom hexamer, we calculate an S → S lifetime of 34.75 fs, which is consistent with our time-resolved spectroscopic data. Our simulations suggest that vibronic motions of the central carbons in the cyclopentadithiophene functional groups are predominantly involved in the nonradiative transitions, and the excitation becomes more localized on a monomer fragment over time. The combined use of time-resolved experiments and nonadiabatic molecular dynamics calculations in this work provides mechanistic insight into chemical functionalities that can be tuned to enhance energy transfer in other prospective low-bandgap polymer materials.
共轭聚合物为在众多红外光应用中调节能量转移提供了前所未有的化学可调性。在这项工作中,我们结合时间分辨光谱实验和非绝热分子动力学计算,来探究一种最近合成的基于交替环戊二噻吩和电负性苯并噻二唑杂环的窄带隙供体-受体共轭聚合物中的光化学和非辐射跃迁。使用能够处理包含260个原子的大六聚体的大规模半经验非绝热分子动力学,我们计算出S→S寿命为34.75飞秒,这与我们的时间分辨光谱数据一致。我们的模拟表明,环戊二噻吩官能团中中心碳原子的振动运动主要参与非辐射跃迁,并且随着时间的推移,激发在单体片段上变得更加局域化。这项工作中时间分辨实验和非绝热分子动力学计算的结合使用,为化学官能团提供了机理上的见解,这些官能团可以被调节以增强其他潜在低带隙聚合物材料中的能量转移。