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Theoretical Shaping of Femtosecond Laser Pulses for Molecular Photodissociation with Control Techniques Based on Ehrenfest's Dynamics and Time-Dependent Density Functional Theory

机译:基于埃伦菲斯特动力学和时变密度泛函理论的控制技术飞秒激光脉冲的分子光解理论成形

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摘要

The combination of nonadiabatic Ehrenfest-path molecular dynamics (EMD) based on time-dependent density functional theory (TDDFT) and quantum optimal control formalism (QOCT) was used to optimize the shape of ultra-short laser pulses to achieve photodissociation of a hydrogen molecule and the trihydrogen cation H-3(+). This work completes a previous one [A. Castro, ChemPhysChem, 2013, 14, 1488-1495], in which the same objective was achieved by demonstrating the combination of QOCT and TDDFT for many-electron systems on static nuclear potentials. The optimization model, therefore, did not include the nuclear movement and the obtained dissociation mechanism could only be sequential: fast laser-assisted electronic excitation to nonbonding states (during which the nuclei are considered to be static), followed by field-free dissociation. Here, in contrast, the optimization was performed with the QOCT constructed on top of the full dynamic model comprised of both electrons and nuclei, as described within EMD based on TDDFT. This is the first numerical demonstration of an optimal control formalism for a hybrid quantum-classical model, that is, a molecular dynamics method.
机译:基于时间依赖性密度泛函理论(TDDFT)和量子最优控制形式(QOCT)的非绝热Ehrenfest路径分子动力学(EMD)的组合用于优化超短激光脉冲的形状以实现氢分子的光解离和三氢阳离子H-3(+)。这项工作完成了上一个[A. Castro,ChemPhysChem,2013,14,1488-1495],其中,通过证明QOCT和TDDFT结合用于多电子系统的静态核势,实现了相同的目标。因此,优化模型不包括核运动,而获得的解离机制只能是顺序的:快速激光辅助电子激发至非键合态(在此期间将核视为静态),然后进行无场解离。相比之下,这里的优化是基于QOCT进行的,该QOCT是在包含电子和原子核的完整动态模型的基础上构建的,如基于TDDFT的EMD中所述。这是混合量子经典模型(即分子动力学方法)的最优控制形式的第一个数值证明。

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