Zheng Yulong, Venkatesh Rahul, Rojas-Gatjens Esteban, Reichmanis Elsa, Silva-Acuña Carlos
School of Chemistry and Biochemistry, Georgia Institute of Technology, 901 Atlantic Drive, Atlanta, Georgia 30332, United States.
School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 311 Ferst Drive NW, Atlanta, Georgia 30332, United States.
J Phys Chem Lett. 2024 Jan 11;15(1):272-280. doi: 10.1021/acs.jpclett.3c03094. Epub 2024 Jan 2.
Exciton-exciton annihilation is a ubiquitous nonlinear dynamic phenomenon in materials hosting Frenkel excitons. In this work, we investigate the nonlinear exciton dynamics of an electron push-pull conjugated polymer by fluence-dependent transient absorption and excitation-correlation photoluminescence spectroscopy, where we can quantitatively show the latter to be a more selective probe of the nonlinear dynamics. Simulations based on a time-independent exciton annihilation model show a decreasing trend for the extracted annihilation rates with excitation fluence. Further investigation of the fluence-dependent transients suggests that the exciton-exciton annihilation bimolecular rates are not constant in time, displaying a time dependence, which we rationalize as reflective of one-dimensional exciton diffusion, with a diffusion length estimated to be 9 ± 2 nm. In addition, exciton annihilation gives rise to a long-lived species that recombines on a nanosecond time scale. Our conclusions shed broad light onto nonlinear exciton dynamics in push-pull conjugated polymers.
激子 - 激子湮灭是含有弗伦克尔激子的材料中普遍存在的非线性动力学现象。在这项工作中,我们通过依赖于能量密度的瞬态吸收和激发相关光致发光光谱研究了一种电子推挽共轭聚合物的非线性激子动力学,在此我们能够定量地表明后者是对非线性动力学更具选择性的探针。基于与时间无关的激子湮灭模型的模拟显示,提取的湮灭速率随激发能量密度呈下降趋势。对依赖于能量密度的瞬态的进一步研究表明,激子 - 激子湮灭双分子速率并非随时间恒定,而是表现出时间依赖性,我们将其解释为反映了一维激子扩散,估计扩散长度为9±2纳米。此外,激子湮灭产生了一种在纳秒时间尺度上复合的长寿命物种。我们的结论为推挽共轭聚合物中的非线性激子动力学提供了广泛的启示。