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Simulating pump-probe photoelectron and absorption spectroscopy on the attosecond timescale with time-dependent density functional theory

机译:时变密度泛函理论在亚秒级尺度上模拟泵浦探针光电子和吸收光谱

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摘要

Molecular absorption and photoelectron spectra can be efficiently predicted with real-time time-dependent density functional theory. We show herein how these techniques can be easily extended to study time-resolved pump-probe experiments, in which a system response (absorption or electron emission) to a probe pulse is measured in an excited state. This simulation tool helps with the interpretation of fast-evolving attosecond time-resolved spectroscopic experiments, in which electronic motion must be followed at its natural timescale. We show how the extra degrees of freedom (pump-pulse duration, intensity, frequency, and time delay), which are absent in a conventional steady-state experiment, provide additional information about electronic structure and dynamics that improve characterization of a system. As an extension of this approach, time-dependent 2D spectroscopy can also be simulated, in principle, for large-scale structures and extended systems. Copyright © 2013 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
机译:分子吸收和光电子光谱可以通过实时的时变密度泛函理论进行有效预测。我们在这里展示了如何轻松地将这些技术扩展到研究时间分辨的泵浦探针实验,其中在激发态下测量对探针脉冲的系统响应(吸收或电子发射)。该仿真工具有助于解释快速发展的阿秒时间分辨光谱实验,在该实验中,必须在自然时标下跟踪电子运动。我们展示了常规稳态实验中不存在的额外自由度(泵浦脉冲持续时间,强度,频率和时间延迟)如何提供有关电子结构和动力学的其他信息,这些信息可以改善系统的特性。作为此方法的扩展,原则上也可以针对大型结构和扩展系统模拟与时间相关的2D光谱。版权所有©2013 WILEY-VCH Verlag GmbH&Co.KGaA,Weinheim。

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