Sensitivity Analysis in Photodynamics: How Does the Electronic Structure Control cis-Stilbene Photodynamics?

IF 5.5 1区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Chemical Theory and Computation Pub Date : 2024-12-24 Epub Date: 2024-12-12 DOI:10.1021/acs.jctc.4c01008
Tomáš Jíra, Jiří Janoš, Petr Slavíček
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Abstract

The techniques of computational photodynamics are increasingly employed to unravel reaction mechanisms and interpret experiments. However, misinterpretations in nonadiabatic dynamics caused by inaccurate underlying potentials are often difficult to foresee. This work focuses on revealing the systematic errors in the nonadiabatic simulations due to the underlying potentials and suggests a thrifty approach to evaluate the sensitivity of the simulations to the potential. This issue is exemplified in the photochemistry of cis-stilbene, where similar experimental outcomes have been differently interpreted based on the electronic structure methods supporting nonadiabatic dynamics. We examine the predictions of cis-stilbene photochemistry using trajectory surface hopping methods coupled with various electronic structure methods (OM3-MRCISD, SA2-CASSCF, XMS-SA2-CASPT2, and XMS-SA3-CASPT2) and assess their ability to interpret experimental observations. While the excited-state lifetimes and calculated photoelectron spectra show consistency with experiments, the reaction quantum yields vary significantly: either completely suppressing cyclization or isomerization. Intriguingly, analyzing stationary points on the potential energy surface does not hint at any major discrepancy, making the electronic structure methods seemingly reliable when treated separately. We show that performing an ensemble of simulations with different potentials provides an estimate of the electronic structure sensitivity. However, this ensemble approach is costly. Thus, we propose running nonadiabatic simulations with an external bias at a resource-efficient underlying potential (semiempirical or machine-learned) for the sensitivity analysis. We demonstrate this approach using a semiempirical OM3-MRCISD method with a harmonic bias toward cyclization.

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光动力学中的灵敏度分析:电子结构如何控制顺式苯乙烯光动力学?
计算光动力学技术越来越多地用于揭示反应机制和解释实验。然而,在非绝热动力学中,由不准确的潜在势引起的误解往往是难以预见的。这项工作的重点是揭示系统误差在非绝热模拟由于潜在的势,并提出了一个节俭的方法来评估模拟的敏感性势。这一问题在顺式二苯乙烯的光化学中得到了例证,基于支持非绝热动力学的电子结构方法,类似的实验结果得到了不同的解释。我们使用轨迹表面跳变方法结合各种电子结构方法(OM3-MRCISD、SA2-CASSCF、XMS-SA2-CASPT2和XMS-SA3-CASPT2)对顺式二苯胺光化学的预测进行了检验,并评估了它们解释实验观察结果的能力。虽然激发态寿命和计算光电子能谱与实验一致,但反应量子产率变化很大:要么完全抑制环化,要么完全抑制异构化。有趣的是,分析势能面上的平稳点并没有暗示任何重大的差异,使得电子结构方法在单独处理时看起来是可靠的。我们表明,用不同的电势进行综合模拟可以估计电子结构的灵敏度。然而,这种集成方法的成本很高。因此,我们建议在资源有效的潜在潜力(半经验或机器学习)下运行具有外部偏差的非绝热模拟,以进行敏感性分析。我们使用半经验的OM3-MRCISD方法证明了这种方法,该方法具有谐波偏向环化。
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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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