固体体中双光子跃迁干涉重建阿秒加热

Á. Jiménez-Galán, Rui E. F. Silva, M. Ivanov
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摘要

双光子跃迁干涉重建阿秒跳动是解决原子和分子系统中超快电子动力学的最广泛应用的技术之一。由于它依赖于真空中光电子的干涉,在大部分晶体中从未考虑过类似的干涉。通过在实际系统中进行精确的数值模拟,我们证明了双光子跃迁的干涉可以直接记录在固体体中,并可以用标准角度分辨光发射光谱读出。来自固体体的光电子能谱中RABBIT跳动的相位对能带之间Berry连接的相对相位敏感,并且当其中一个量子路径穿过能带时,它会经历π的位移。对于共振带间跃迁,由于电子退相干,泵浦脉冲和探针脉冲在时间上分离,RABBIT振荡的幅度衰减,为提取退相时间提供了一种简单的干涉方法。
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Reconstruction of attosecond beating by interference of two-photon transitions in the bulk of solids
The reconstruction of attosecond beating by interference of two-photon transitions (RABBIT) is one of the most widely used techniques for resolving ultrafast electronic dynamics in atomic and molecular systems. As it relies on the interference of photo-electrons in vacuum, similar interference has never been contemplated in the bulk of crystals. Using accurate numerical simulations in a realistic system, here we show that the interference of two-photon transitions can be recorded directly in the bulk of solids and read out with standard angle-resolved photo-emission spectroscopy. The phase of the RABBIT beating in the photoelectron spectra coming from the bulk of solids is sensitive to the relative phase of the Berry connection between bands and it experiences a shift of π as one of the quantum paths crosses a band. For resonant interband transitions, the amplitude of the RABBIT oscillation decays as the pump and probe pulses are separated in time due to electronic decoherence, providing a simple interferometric method to extract dephasing times.
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