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首页> 外文期刊>The European physical journal, B. Condensed matter physics >Tailored pump-probe transient spectroscopy with time-dependent density-functional theory: controlling absorption spectra
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Tailored pump-probe transient spectroscopy with time-dependent density-functional theory: controlling absorption spectra

机译:随时间变化的密度泛函理论的量身定制的泵浦探针瞬态光谱:控制吸收光谱

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摘要

Recent advances in laser technology allow us to follow electronic motion at its natural time-scale with ultra-fast time resolution, leading the way towards attosecond physics experiments of extreme precision. In this work, we assess the use of tailored pumps in order to enhance (or reduce) some given features of the probe absorption (for example, absorption in the visible range of otherwise transparent samples). This type of manipulation of the system response could be helpful for its full characterization, since it would allow us to visualize transitions that are dark when using unshaped pulses. In order to investigate these possibilities, we perform first a theoretical analysis of the non-equilibrium response function in this context, aided by one simple numerical model of the hydrogen atom. Then, we proceed to investigate the feasibility of using time-dependent density-functional theory as a means to implement, theoretically, this absorption-optimization idea, for more complex atoms or molecules. We conclude that the proposed idea could in principle be brought to the laboratory: tailored pump pulses can excite systems into light-absorbing states. However, we also highlight the severe numerical and theoretical difficulties posed by the problem: large-scale non-equilibrium quantum dynamics are cumbersome, even with TDDFT, and the shortcomings of state-of-the-art TDDFT functionals may still be serious for these out-of-equilibrium situations.
机译:激光技术的最新进展使我们能够以超快的时间分辨率在自然时间尺度上跟踪电子运动,从而引领了极高精度的亚秒物理实验。在这项工作中,我们评估了定制泵的使用,以增强(或减少)探头吸收的某些给定特征(例如,在透明样品的可见范围内的吸收)。这种对系统响应的操纵可能有助于对其进行全面表征,因为它可以使我们看到使用未整形脉冲时变暗的过渡。为了研究这些可能性,我们首先在一个简单的氢原子数值模型的帮助下,对这种非平衡响应函数进行理论分析。然后,我们继续研究使用时变密度泛函理论作为在理论上针对更复杂的原子或分子实施此吸收优化思想的方法的可行性。我们得出结论,建议的想法原则上可以带入实验室:定制的泵浦脉冲可以将系统激发到吸收光的状态。但是,我们还强调了该问题带来的严重的数值和理论困难:即使使用TDDFT,大规模的非平衡量子动力​​学也很繁琐,而对于这些问题,最新的TDDFT功能的缺点可能仍然很严重。失衡的情况。

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