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Application of the time-dependent surface flux method to the time-dependent multiconfiguration self-consistent-field method

机译:将时间依赖性表面通量法应用于时间依赖性多组件的自我统一 - 现场方法

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We present a numerical implementation of the time-dependent surface flux (tSURFF) method [L. Tao and A. Scrinzi, New J. Phys. 14, 013021 (2012).], an efficient computational scheme to extract photoelectron energy spectra, to the time-dependent multiconfiguration self-consistent-field (TD-MCSCF) method. Extending the original tSURFF method developed for single-particle systems, we formulate the equations of motion for the spectral amplitude of orbital functions constituting the TD-MCSCF wave function, from which the angle-resolved photoelectron energy spectrum, and more generally, photoelectron reduced density matrices (RDMs) are readily obtained. The tSURFF method applied to the TD-MCSCF wave function, in combination with an efficient absorbing boundary offered by the infinite-range exterior complex scaling, enables accurate ab initio computations of photoelectron energy spectra from multielectron systems subject to an intense and ultrashort laser pulse with a computational cost significantly reduced compared to that required in projecting the total wave function onto scattering states. We apply the present implementation to the photoionization of Ne exposed to an attosecond extreme-ultraviolet (XUV) pulse and above-threshold ionization of Ar irradiated by an intense mid-infrared laser field, demonstrating both accuracy and efficiency of the present method.
机译:我们介绍了时间依赖性表面通量(TSURFF)方法的数值实现[L.陶和A.谢谢,新的J. phy。 14,013021(2012)。],一种有效的计算方案,用于提取光电子能量谱,到时间依赖的多组件自我致致自负 - 场(TD-MCSCF)方法。扩展为单粒子系统开发的原始TSURFF方法,我们制定了构成TD-MCSCF波函数的轨道功能的光谱幅度的运动方程,从该轨道功能的轨道功能,从中分辨光电子能量谱,更通常是光电子的降低易于获得矩阵(RDMS)。应用于TD-MCSCF波函数的TSURFF方法与无限范围外部复杂缩放提供的有效吸收边界组合,使得从多电气系统进行光电元件的精确AB Initio计算,这是强烈和超短的激光脉冲的与将总波函数突出到散射状态的情况下,计算成本明显减少。我们将本发明的实施方式应用于暴露于由强烈的中红外激光场照射的AtosoSecond-utlaviolet(XUV)脉冲的Ne的光阈值,并展示了本方法的精度和效率。

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