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利用多维高次谐波载波包络相位光谱探测声子动力学。

Probing phonon dynamics with multidimensional high harmonic carrier-envelope-phase spectroscopy.

作者信息

Neufeld Ofer, Zhang Jin, De Giovannini Umberto, Hübener Hannes, Rubio Angel

机构信息

Max Planck Institute for the Structure and Dynamics of Matter and Center for Free-Electron Laser Science, 22761 Hamburg, Germany.

Dipartimento di Fisica e Chimica-Emilio Segrè, Università degli Studi di Palermo, I-90123 Palermo Italy.

出版信息

Proc Natl Acad Sci U S A. 2022 Jun 21;119(25):e2204219119. doi: 10.1073/pnas.2204219119. Epub 2022 Jun 15.

Abstract

We explore pump-probe high harmonic generation (HHG) from monolayer hexagonal-boron-nitride, where a terahertz pump excites coherent optical phonons that are subsequently probed by an intense infrared pulse that drives HHG. We find, through state-of-the-art ab initio calculations, that the structure of the emission spectrum is attenuated by the presence of coherent phonons and no longer comprises discrete harmonic orders, but rather a continuous emission in the plateau region. The HHG yield strongly oscillates as a function of the pump-probe delay, corresponding to ultrafast changes in the lattice such as specific bond compression or stretching dynamics. We further show that in the regime where the excited phonon period and the pulse duration are of the same order of magnitude, the HHG process becomes sensitive to the carrier-envelope phase (CEP) of the driving field, even though the pulse duration is so long that no such sensitivity is observed in the absence of coherent phonons. The degree of CEP sensitivity versus pump-probe delay is shown to be a highly selective measure for instantaneous structural changes in the lattice, providing an approach for ultrafast multidimensional HHG spectroscopy. Remarkably, the obtained temporal resolution for phonon dynamics is ∼1 femtosecond, which is much shorter than the probe pulse duration because of the inherent subcycle contrast mechanism. Our work paves the way toward routes of probing phonons and ultrafast material structural changes with subcycle temporal resolution and provides a mechanism for controlling the HHG spectrum.

摘要

我们研究了单层六方氮化硼中的泵浦-探测高次谐波产生(HHG),其中太赫兹泵浦激发相干光学声子,随后由驱动HHG的强红外脉冲对其进行探测。通过最先进的从头计算,我们发现,由于相干声子的存在,发射光谱的结构被衰减,不再包含离散的谐波阶次,而是在平台区域呈现连续发射。HHG产率作为泵浦-探测延迟的函数强烈振荡,这对应于晶格中的超快变化,如特定键的压缩或拉伸动力学。我们进一步表明,在激发声子周期和脉冲持续时间具有相同数量级的情况下,即使脉冲持续时间很长,以至于在没有相干声子的情况下未观察到这种敏感性,HHG过程对驱动场的载波包络相位(CEP)也变得敏感。CEP敏感性程度与泵浦-探测延迟的关系被证明是晶格中瞬时结构变化的一种高度选择性测量方法,为超快多维HHG光谱学提供了一种途径。值得注意的是,所获得的声子动力学时间分辨率约为1飞秒,由于固有的亚周期对比度机制,该分辨率比探测脉冲持续时间短得多。我们的工作为以亚周期时间分辨率探测声子和超快材料结构变化的途径铺平了道路,并提供了一种控制HHG光谱的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f8d/9231615/a86e9e4e8215/pnas.2204219119fig01.jpg

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