论文标题

非酮电子动量偏移是在强驱​​动原子中相关的三个电子电离的探针

Nondipole electron momentum offset as a probe of correlated three electron ionization in strongly driven atoms

论文作者

Katsoulis, Georgios Petros, Peters, Matthew Benjamin, Emmanouilidou, Agapi

论文摘要

我们采用了最近开发的三维半经典模型来鉴定由红外激光脉冲驱动的NE的三二唑效应,而在电子 - 电子相关性的强度下,在盛行的强度。该模型充分说明了每个电子与核心的库仑相互作用,并通过采用有效的库仑电位来描述结合电子(ECBB)之间的相互作用,从而避免了人工自动化。使用欧洲央行模型,我们确定了非二极管效应的突出特征。也就是说,沿着最终电子力量平均总和的光传播方向的分量大且积极。也就是说,我们确定了偶极子近似中不存在的积极动量偏移。我们发现,这种积极的动量偏移主要源于磁场引起的动量变化。为了进一步了解这种动量变化,我们还为电磁场内电子运动的运动开发了一个简单的模型。这个简单的模型仅说明了库仑力的效果,只是在回忆期间是电子动量的急剧变化。我们表明,由于磁场引起的动量变化与回忆电子回忆期间动量的急剧变化以及回忆和结合电子的回忆时间有关。因此,我们证明了最终电子动量偏移探测回忆的强度以及多电极电离的相关程度。

We employ a recently developed three-dimensional semiclassical model to identify nondipole effects in triple ionization of Ne driven by infrared laser pulses at intensities where electron-electron correlation prevails. This model fully accounts for the Coulomb interaction of each electron with the core and avoids artificial autoionization by employing effective Coulomb potentials to describe the interaction between bound electrons (ECBB). Using the ECBB model, we identify a prominent signature of nondipole effects. Namely, the component along the direction of light propagation of the average sum of the final electron momenta is large and positive. That is, we identify a positive momentum offset, absent in the dipole approximation. We find that this positive momentum offset stems mostly from the momentum change due to the magnetic field. To further understand this momentum change, we also develop a simple model for the motion of an electron inside an electromagnetic field. This simple model accounts for the effect of the Coulomb forces only as a sharp change in the momentum of the electron during recollision. We show that the momentum change due to the magnetic field is related with the sharp change in momentum during recollision for the recolliding electron as well as with the time of recollision for both the recolliding and bound electrons. Hence, we demonstrate that the final electron momentum offset probes the strength of a recollision and hence the degree of correlation in multielectron ionization.

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