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降低强场电离的时域耦合积分模拟成本。

Reducing the Cost of TD-CI Simulations of Strong Field Ionization.

作者信息

Durden Andrew S, Schlegel H Bernhard

机构信息

Department of Chemistry, Wayne State University, Detroit, Michigan 48202, United States.

出版信息

J Phys Chem A. 2024 Sep 5;128(35):7440-7450. doi: 10.1021/acs.jpca.4c01732. Epub 2024 Aug 23.

Abstract

Strong field ionization of molecules by intense laser pulses can be simulated by time-dependent configuration interaction (TD-CI) with a complex absorbing potential (CAP). Standard molecular basis sets need to be augmented with several sets of diffuse functions for effective interaction with the CAP. This dramatically increases the number of configurations and the cost of the TD-CI simulations as the size of the molecules increases. The cost can be reduced by making use of spin symmetry and by employing an orbital energy cutoff to limit the number of virtual orbitals used to construct the excited configurations. Greater reductions in the number of virtual orbitals can be obtained by examining their interaction with the absorbing potential during simulations and their contributions to the strong field ionization rate. This can be determined from the matrix elements of the absorbing potential and the TD-CI coefficients from test simulations. Compared to a simple 3 hartree cutoff in the orbital energies, these approaches reduce the number of virtual orbitals by 20-35% for neutral molecules and 5-10% for cations. As a result, the cost of simulations is reduced by 35-60% for neutral molecules. The number of virtual orbitals needed can also be estimated by second-order perturbation theory without the need for test simulations. The number of virtual orbitals can be reduced further by adapting orbitals to the laser field using natural orbitals derived from test simulations. This is particularly effective for cations, yielding reductions of more than 20%.

摘要

强激光脉冲对分子的强场电离可以通过含复吸收势(CAP)的含时组态相互作用(TD-CI)来模拟。标准分子基组需要增加几组弥散函数,以便与CAP进行有效相互作用。随着分子尺寸的增加,这会显著增加组态的数量以及TD-CI模拟的成本。可以通过利用自旋对称性和采用轨道能量截止来限制用于构建激发组态的虚拟轨道数量,从而降低成本。通过在模拟过程中检查虚拟轨道与吸收势的相互作用及其对强场电离率的贡献,可以进一步减少虚拟轨道的数量。这可以从吸收势的矩阵元以及测试模拟的TD-CI系数中确定。与简单的3哈特里轨道能量截止相比,这些方法对于中性分子可将虚拟轨道数量减少20% - 35%,对于阳离子可减少5% - 10%。结果,中性分子的模拟成本降低了35% - 60%。所需虚拟轨道的数量也可以通过二阶微扰理论进行估计,而无需进行测试模拟。通过使用从测试模拟中导出的自然轨道使轨道适应激光场,可以进一步减少虚拟轨道的数量。这对阳离子特别有效,可减少超过20%。

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