Prediction through quantum dynamics simulations: Photo-excited cyclobutanone

Olivia Bennett, Antonia Freibert, K. Eryn Spinlove, Graham A. Worth
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Abstract

Quantum dynamics simulations are becoming a standard tool for simulating photo-excited molecular systems involving a manifold of coupled states, known as non-adiabatic dynamics. While these simulations have had many successes in explaining experiments and giving details of non-adiabatic transitions, the question remains as to their predictive power. In this work, we present a set of quantum dynamics simulations on cyclobutanone using both grid-based multi-configuration time-dependent Hartree and direct dynamics variational multi-configuration Gaussian methods. The former used a parameterized vibronic coupling model Hamiltonian, and the latter generated the potential energy surfaces on the fly. The results give a picture of the non-adiabatic behavior of this molecule and were used to calculate the signal from a gas-phase ultrafast electron diffraction (GUED) experiment. Corresponding experimental results will be obtained and presented at a later stage for comparison to test the predictive power of the methods. The results show that over the first 500 fs after photo-excitation to the S2 state, cyclobutanone relaxes quickly to the S1 state, but only a small population relaxes further to the S0 state. No significant transfer of population to the triplet manifold is found. It is predicted that the GUED experiments over this time scale will see signals related mostly to the C–O stretch motion and elongation of the molecular ring along the C–C–O axis.
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通过量子动力学模拟进行预测:光激发环丁酮
量子动力学模拟正逐渐成为模拟光激发分子系统的标准工具,该系统涉及多方面的耦合状态,即所谓的非绝热动力学。虽然这些模拟在解释实验和提供非绝热转变细节方面取得了许多成功,但其预测能力仍然是个问题。在这项工作中,我们采用基于网格的多构型时变哈特里方法和直接动力学变分多构型高斯方法,对环丁酮进行了一组量子动力学模拟。前者使用参数化的振子耦合模型哈密顿,后者则直接生成势能面。研究结果展示了该分子的非绝热行为,并用于计算气相超快电子衍射(GUED)实验的信号。相应的实验结果将在稍后阶段获得和展示,以便进行比较,检验这些方法的预测能力。结果表明,在光激发到 S2 状态后的最初 500 fs 内,环丁酮迅速弛豫到 S1 状态,但只有一小部分种群进一步弛豫到 S0 状态。在三重流形中没有发现明显的种群转移。据预测,在这一时间范围内进行的 GUED 实验将发现主要与 C-O 伸展运动和分子环沿 C-C-O 轴伸长有关的信号。
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