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首页> 外文期刊>Physical Review, A >Revisiting the recollisional excitation-tunneling process in strong-field nonsequential double ionization of helium
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Revisiting the recollisional excitation-tunneling process in strong-field nonsequential double ionization of helium

机译:重新探测氦强 - 野外非顺强双电离中的倒闭激励隧道过程

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We revisit the excitation-tunneling process in nonsequential double ionization (NSDI) of helium in an 800-nm laser field. The correlated two-electron momentum distributions are calculated by using the improved quantitative rescattering (QRS) model, in which the lowering of the threshold energy due to the presence of an electric field at the instant of recollision is taken into account. In the framework of the QRS model, the correlated two-electron momentum distributions for excitation-tunneling in NSDI can be factorized as a product of the returning-electron wave packet (RWP) and the field-free differential cross section (DCS) for electron impact excitation of the parent ion multiplied by the tunneling ionization rate of electrons in the excited states. The RWPs, which describe the momentum distribution of the returning electrons, are obtained within the strong-field approximation for high-order above-threshold ionization. The DCSs for electron impact excitation of He~+ are calculated using the state-of-the-art many-electron R-matrix theory, and the tunneling ionization rates for electrons in the excited states are evaluated by solving the time-dependent Schr?dinger equation. The calculated correlated two-electron momentum distribution shows that the fourfold symmetry with regard to the parallel momentum components is broken. This is in contradiction to the prevalent view that the correlation pattern for excitation-tunneling in NSDI is symmetric with respect to the coordinate axes. By including the recollisional (e, 2e) process, the predicted correlated two-electron momentum distributions are found to be in good qualitative agreement with experiment.
机译:我们在800nm激光场中重新求解氦的非顺序双电离(NSDI)中的激励隧道过程。通过使用改进的定量振缩(QRS)模型来计算相关的两电子动量分布,其中考虑了由于速度的瞬间存在电场引起的阈值能量的降低。在QRS模型的框架中,NSDI中激发隧穿的相关的两电子动量分布可以作为返回电子波分组(RWP)的乘积和电子的无场差分横截面(DCS)。父离子的冲击激发乘以激发态中电子的隧道电离率。描述返回电子的动量分布的RWP在高阶近阈值电离的强场近似内获得。使用最先进的许多电子R族理论计算HE〜+的电子冲击激发的DCSS,并且通过解决时间依赖的SCHR来评估激发态中电子中电子的隧道电离速率? Dinger方程。计算出相关的两电子动量分布表明,关于平行动量分量的四重对称性被破坏。这与普遍的视图矛盾,即NSDI中的激励隧道的相关模式相对于坐标轴对称。通过包括倒注(E,2E)过程,发现预测的相关的两电子动量分布与实验良好的定性协议。

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