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Real-time quantum trajectories for classically allowed dynamics in strong laser fields

机译:用于强激光场中经典允许动力学的实时量子轨迹

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摘要

Both the physical picture of the dynamics of atoms and molecules in intense infrared fields and its theoretical description use the concept of electron trajectories. Here, we address a key question which arises in this context: Are distinctly quantum features of these trajectories, such as the complex-valued coordinates, physically relevant in the classically allowed region of phase space, and what is their origin? First, we argue that solutions of classical equations of motion can account for quantum effects. To this end, we construct an exact solution to the classical Hamilton-Jacobi equation which accounts for dynamics of the wave packet, and show that this solution is physically correct in the limit (h) over tilde -> 0. Second, we show that imaginary components of classical trajectories are directly linked to the finite size of the initial wave packet in momentum space. This way, if the electronic wave packet produced by optical tunnelling in strong infrared fields is localised both in coordinate and momentum, its motion after tunnelling ipso facto cannot be described with purely classical trajectories - in contrast to popular models in the literature.
机译:原子和分子在强红外场中的动力学的物理图像及其理论描述均使用电子轨迹的概念。在这里,我们要解决在此情况下出现的一个关键问题:这些轨迹的明显量子特征(例如复数值坐标),在相空间的经典允许区域中是否物理相关以及它们的起源是什么?首先,我们认为经典运动方程的解可以解释量子效应。为此,我们构造了一个经典的汉密尔顿-雅各比方程的精确解,该方程考虑了波包的动力学,并表明该解在波浪号-> 0的极限(h)内在物理上是正确的。经典轨迹的虚部与动量空间中初始波包的有限大小直接相关。这样,如果在强红外场中通过光隧穿产生的电子波包既在坐标上又在动量上都被定位,则其在隧穿之后的运动实际上不能用经典的轨迹来描述-与文献中流行的模型相反。

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