Laboratoire de Chimie Physique Matière et Rayonnement , Sorbonne Université and CNRS , F-75005 Paris , France.
Laboratoire de Chimie Théorique , Sorbonne Université and CNRS , F-75005 Paris , France.
J Chem Theory Comput. 2018 Nov 13;14(11):5846-5858. doi: 10.1021/acs.jctc.8b00656. Epub 2018 Oct 15.
A clear understanding of the mechanisms that control the electron dynamics in a strong laser field is still a challenge that requires interpretation by advanced theory. Development of accurate theoretical and computational methods, able to provide a precise treatment of the fundamental processes generated in the strong field regime, is therefore crucial. A central aspect is the choice of the basis for the wave function expansion. Accuracy in describing multiphoton processes is strictly related to the intrinsic properties of the basis, such as numerical convergence, computational cost, and representation of the continuum. By explicitly solving the 1D and 3D time-dependent Schrödinger equation for H in the presence of an intense electric field, we explore the numerical performance of using a real-space grid, a B-spline basis, and a Gaussian basis (improved by optimal Gaussian functions for the continuum). We analyze the performance of the three bases for high-harmonic generation and above-threshold ionization for H. In particular, for high-harmonic generation, the capability of the basis to reproduce the two-center interference and the hyper-Raman phenomena is investigated.
对于控制强激光场中电子动力学的机制,人们有一个清晰的认识,这仍然是一个需要通过先进理论来解释的挑战。因此,发展能够准确处理强场条件下产生的基本过程的精确理论和计算方法是至关重要的。一个核心方面是波函数展开的基础选择。准确描述多光子过程与基础的内在特性密切相关,例如数值收敛性、计算成本和连续统的表示。通过在强电场中明确求解一维和三维含时薛定谔方程,我们探索了使用实空间网格、B 样条基和高斯基(通过优化连续统的高斯函数来改进)的数值性能。我们分析了这三种基在高次谐波产生和 H 的阈上电离中的性能。特别是对于高次谐波产生,我们研究了基础重现双中心干涉和超拉曼现象的能力。