Kolesik M, Wright E M, Andreasen J, Brown J M, Carlson D R, Jones R J
College of Optical Sciences, University of Arizona, Tucson, AZ 85721, USA.
Opt Express. 2012 Jul 2;20(14):16113-28. doi: 10.1364/OE.20.016113.
We introduce a new computational approach for femtosecond pulse propagation in the transparency region of gases that permits full resolution in three space dimensions plus time while fully incorporating quantum coherent effects such as high-harmonic generation and strong-field ionization in a holistic fashion. This is achieved by utilizing a one-dimensional model atom with a delta-function potential which allows for a closed-form solution for the nonlinear optical response due to ground-state to continuum transitions. It side-steps evaluation of the wave function, and offers more than one hundred-fold reduction in computation time in comparison to direct solution of the atomic Schrödinger equation. To illustrate the capability of our new computational approach, we apply it to the example of near-threshold harmonic generation in Xenon, and we also present a qualitative comparison between our model and results from an in-house experiment on extreme ultraviolet generation in a femtosecond enhancement cavity.
我们介绍了一种用于飞秒脉冲在气体透明区域中传播的新计算方法,该方法能够在三个空间维度和时间上实现全分辨率,同时以整体方式充分纳入量子相干效应,如高次谐波产生和强场电离。这是通过使用具有δ函数势的一维模型原子来实现的,该模型原子允许对基态到连续态跃迁引起的非线性光学响应进行封闭形式的求解。它避免了波函数的评估,与直接求解原子薛定谔方程相比,计算时间减少了一百多倍。为了说明我们新计算方法的能力,我们将其应用于氙气中近阈值谐波产生的示例,并且还对我们的模型与飞秒增强腔中极紫外产生的内部实验结果进行了定性比较。