论文标题

在强场电离中操纵扭曲的电子

Manipulating Twisted Electrons in Strong-Field Ionization

论文作者

Maxwell, A. S., Armstrong, G. S. J., Ciappina, M. F., Pisanty, E., Kang, Y., Brown, A. C., Lewenstein, M., Faria, C. Figueira de Morisson

论文摘要

我们研究了在强场电离中释放的光电子的离散轨道角动量(OAM)。我们使用这些“扭曲”电子来对涡流干扰的现有实验工作提供了一种替代解释,这是由强烈的场电离引起的,这是由两个由延迟隔开的两个反射圆形偏振脉冲介导的。使用强场近似,我们得出了涡流的干扰条件。在霓虹灯目标的计算中,我们发现涡旋条件与使用强场近似计算的光电动量分布以及时间依赖性方法qprop和r-matrix的光电动量分布非常好。对于每种方法,我们都会检查光电子的OAM,发现少数涡旋状态位于单独的能量区域中。我们证明涡旋源于对扭曲电子状态的干扰。每个扭曲电子状态的OAM可以与该区域螺旋的臂数直接相关。我们通过用成对的扭曲电子来重新创建涡旋,并使用它来确定绿月份的半经典关系,从而获得进一步的理解。关于直接在强场电离中或采用特定的激光脉冲方案以及利用oaM进行光诱导的动力学的时间分解成像中,包括有关测量强场电离中的oaM的讨论。

We investigate the discrete orbital angular momentum (OAM) of photoelectrons freed in strongfield ionization. We use these `twisted' electrons to provide an alternative interpretation on existing experimental work of vortex interferences caused by strong field ionization mediated by two counterrotating circularly polarized pulses separated by a delay. Using the strong field approximation, we derive an interference condition for the vortices. In computations for a neon target we find very good agreement of the vortex condition with photoelectron momentum distributions computed with the strong field approximation, as well as with the time-dependent methods Qprop and R-Matrix. For each of these approaches we examine the OAM of the photoelectrons, finding a small number of vortex states localized in separate energy regions. We demonstrate that the vortices arise from the interference of pairs of twisted electron states. The OAM of each twisted electron state can be directly related to the number of arms of the spiral in that region. We gain further understanding by recreating the vortices with pairs of twisted electrons and use this to determine a semiclassical relation for the OAM. A discussion is included on measuring the OAM in strong field ionization directly or by employing specific laser pulse schemes as well as utilizing the OAM in time-resolved imaging of photo-induced dynamics.

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