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视角:基于轨迹的激发态动力学的振动耦合势

Perspective: Vibronic Coupling Potentials for Trajectory-Based Excited-State Dynamics.

作者信息

Gómez Sandra, Vindel-Zandbergen Patricia, Farkhutdinova Dilara, González Leticia

机构信息

Departamento de Química, Módulo 13, Universidad Autónoma de Madrid, Cantoblanco, Madrid 28049, Spain.

Department of Chemistry, New York University, New York, New York 10003, United States.

出版信息

J Chem Theory Comput. 2025 Sep 23;21(18):8634-8649. doi: 10.1021/acs.jctc.5c01002. Epub 2025 Sep 11.

Abstract

This Perspective reviews the use of vibronic coupling (VC) potentials in trajectory-based excited-state dynamics simulations. Originally developed to provide simplified yet physically grounded representations of nonadiabatic interactions, VC models─particularly their linear version (LVC)─have facilitated extensive investigations of photophysical and photochemical processes, in both molecular and condensed-phase systems. By effectively capturing the coupling between electronic and vibrational motions, VC models enable efficient dynamical simulations, making it feasible to investigate larger and more complex systems, for longer time scales or relying on potential energy surfaces calculated with high levels of theory. These models provide valuable insights into energy and charge transfer mechanisms following photoexcitation, shedding light on excited-state lifetimes and intricate relaxation pathways. Here, we discuss their integration with three trajectory-based computational families of methods: surface hopping, variational multiconfigurational Gaussian, and exact-factorization-derived approaches. We showcase how VC models have helped uncovering key mechanistic insights, including state-specific intersystem crossing pathways and vibrational mode selectivity. As the field progresses, VC-based approaches are expected to be increasingly combined with machine learning, anharmonic corrections, and hybrid LVC/MM frameworks, broadening their applicability to complex, flexible, and solvated environments. We highlight the advantages of VC-based potentials for trajectory-based simulations, emphasizing their computational efficiency and usefulness for benchmarking and exploring photophysical processes in molecular systems.

摘要

本展望回顾了在基于轨迹的激发态动力学模拟中振动电子耦合(VC)势的应用。VC模型最初是为了提供非绝热相互作用的简化但基于物理的表示而开发的,特别是其线性版本(LVC),它促进了对分子和凝聚相系统中光物理和光化学过程的广泛研究。通过有效地捕捉电子和振动运动之间的耦合,VC模型能够进行高效的动力学模拟,从而使得研究更大、更复杂的系统成为可能,研究时间尺度更长,或者依赖于用高水平理论计算的势能面。这些模型为光激发后的能量和电荷转移机制提供了有价值的见解,揭示了激发态寿命和复杂的弛豫途径。在这里,我们讨论它们与三种基于轨迹的计算方法家族的整合:表面跳跃、变分多组态高斯方法和精确因子分解衍生方法。我们展示了VC模型如何帮助揭示关键的机理见解,包括特定状态的系间窜越途径和振动模式选择性。随着该领域的发展,基于VC的方法预计将越来越多地与机器学习、非谐校正以及混合LVC/MM框架相结合,从而拓宽其在复杂、灵活和溶剂化环境中的适用性。我们强调基于VC的势在基于轨迹的模拟中的优势,强调其计算效率以及在分子系统中对光物理过程进行基准测试和探索的有用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c071/12461828/af56589d550a/ct5c01002_0001.jpg

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