首页> 外文期刊>Chemical Physics: A Journal Devoted to Experimental and Theoretical Research Involving Problems of Both a Chemical and Physical Nature >Theoretical study of orientation-dependent multiphoton ionization of polyatomic molecules in intense ultrashort laser fields: A new time-dependent Voronoi-cell finite difference method
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Theoretical study of orientation-dependent multiphoton ionization of polyatomic molecules in intense ultrashort laser fields: A new time-dependent Voronoi-cell finite difference method

机译:强超短激光场中多原子分子取向依赖性多光子电离的理论研究:一种新的时间依赖性Voronoi细胞有限差分法

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摘要

We present a new grid-based time-dependent method to investigate multiphoton ionization (MPI) of polyatomic molecules in intense ultrashort laser fields. The electronic structure of polyatomic molecules is treated by the density-functional theory (DFT) with proper long-range potential and the Kohn-Sham equation is accurately solved by means of the Voronoi-cell finite difference method on non-uniform and highly adaptive molecular grids utilizing geometrical flexibility of the Voronoi diagram. This method is generalized to the time-dependent problems with the split-operator time-propagation technique in the energy representation, allowing accurate and efficient non-perturbative treatment of attosecond electronic dynamics in strong fields. The new procedure is applied to the study of MPI of N-2 and H2O molecules in intense linearly-polarized and ultrashort laser fields with arbitrary field-molecule orientation. Our results demonstrate that the orientation dependence of MPI is determined not just by the highest-occupied molecular orbital (HOMO) but also by the symmetries and dynamics of other contributing molecular orbitals. In particular, the inner orbitals can show dominant contributions to the ionization processes when the molecule is aligned in some specific directions with respect to the field polarization. This feature suggests a new way to selectively probe individual orbitals in strong-field electronic dynamics.
机译:我们提出了一种新的基于网格的时间相关方法,以研究强超短激光场中多原子分子的多光子电离(MPI)。用密度泛函理论(DFT)处理具有适当长程电势的多原子分子的电子结构,并通过Voronoi-cell有限差分法对不均匀且高度自适应的分子精确求解Kohn-Sham方程利用Voronoi图的几何灵活性的网格。该方法被推广到能量表示中的分裂算子时间传播技术中与时间有关的问题,从而可以在强场中准确有效地对阿秒电子动力学进行非扰动处理。该新方法用于研究任意场分子取向的强线性偏振和超短激光场中N-2和H2O分子的MPI。我们的研究结果表明,MPI的取向依赖性不仅由占据最高的分子轨道(HOMO)决定,还由其他贡献分子轨道的对称性和动力学决定。特别地,当分子相对于场极化在某些特定方向上排列时,内部轨道可显示出对电离过程的主要贡献。此功能提出了一种在强场电子动力学中选择性探测单个轨道的新方法。

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