A Practical Framework for Simulating Time-Resolved Spectroscopy Based on a Real-Time Dyson Expansion.

IF 5.7 1区 化学 Q2 CHEMISTRY, PHYSICAL
Journal of Chemical Theory and Computation Pub Date : 2025-07-22 Epub Date: 2025-06-27 DOI:10.1021/acs.jctc.5c00696
Cian C Reeves, Michael Kurniawan, Yuanran Zhu, Nikil Jampana, Jacob Brown, Chao Yang, Khaled Z Ibrahim, Vojtech Vlcek
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引用次数: 0

Abstract

Time-resolved spectroscopy is a powerful tool for probing electron dynamics in molecules and solids, revealing transient phenomena on subfemtosecond time scales. The interpretation of experimental results is often enhanced by parallel numerical studies, which can provide insight and validation for experimental hypotheses. However, developing a theoretical framework for simulating time-resolved spectra remains a significant challenge. The most suitable approach involves the many-body nonequilibrium Green's function formalism, which accounts for crucial dynamical many-body correlations during time evolution. While these dynamical correlations are essential for observing emergent behavior in time-resolved spectra, they also render the formalism prohibitively expensive for large-scale simulations. Substantial effort has been devoted to reducing this computational cost─through approximations and numerical techniques─while preserving the key dynamical correlations. The ultimate goal is to enable first-principles simulations of time-dependent systems ranging from small molecules to large, periodic, multidimensional solids. In this perspective, we outline key challenges in developing practical simulations for time-resolved spectroscopy, with a particular focus on Green's function methodologies. We highlight a recent advancement toward a scalable framework: the real-time Dyson expansion (RT-DE) [Phys. Rev. Lett. 2024, 133, 226902]. We introduce the theoretical foundation of RT-DE and discuss strategies for improving scalability, which have already enabled simulations of system sizes beyond the reach of previous fully dynamical approaches. We conclude with an outlook on future directions for extending RT-DE to first-principles studies of dynamically correlated, nonequilibrium systems.

基于实时戴森展开的模拟时间分辨光谱的实用框架。
时间分辨光谱学是探测分子和固体中的电子动力学,揭示亚飞秒时间尺度上的瞬态现象的有力工具。并行数值研究通常可以增强对实验结果的解释,从而为实验假设提供见解和验证。然而,建立一个模拟时间分辨光谱的理论框架仍然是一个重大挑战。最合适的方法涉及多体非平衡格林函数形式,它解释了时间演化过程中关键的动态多体相关性。虽然这些动态关联对于观察时间分辨光谱中的突发行为是必不可少的,但它们也使形式主义对于大规模模拟来说过于昂贵。大量的努力已经投入到减少这种计算成本──通过近似和数值技术──同时保留关键的动力学相关性。最终目标是实现从小分子到大、周期、多维固体的时间依赖系统的第一性原理模拟。从这个角度来看,我们概述了开发时间分辨光谱实际模拟的关键挑战,特别关注格林函数方法。我们重点介绍了可扩展框架的最新进展:实时戴森扩展(RT-DE)[物理学]。[j].生物医学工程学报,2004,26(2):444 - 444。我们介绍了RT-DE的理论基础,并讨论了提高可伸缩性的策略,这些策略已经使系统大小的模拟超出了以前的完全动态方法的范围。最后展望了将RT-DE扩展到动态相关非平衡系统第一性原理研究的未来方向。
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来源期刊
Journal of Chemical Theory and Computation
Journal of Chemical Theory and Computation 化学-物理:原子、分子和化学物理
CiteScore
9.90
自引率
16.40%
发文量
568
审稿时长
1 months
期刊介绍: The Journal of Chemical Theory and Computation invites new and original contributions with the understanding that, if accepted, they will not be published elsewhere. Papers reporting new theories, methodology, and/or important applications in quantum electronic structure, molecular dynamics, and statistical mechanics are appropriate for submission to this Journal. Specific topics include advances in or applications of ab initio quantum mechanics, density functional theory, design and properties of new materials, surface science, Monte Carlo simulations, solvation models, QM/MM calculations, biomolecular structure prediction, and molecular dynamics in the broadest sense including gas-phase dynamics, ab initio dynamics, biomolecular dynamics, and protein folding. The Journal does not consider papers that are straightforward applications of known methods including DFT and molecular dynamics. The Journal favors submissions that include advances in theory or methodology with applications to compelling problems.
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