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Visualization of two-dimensional transition dipole moment texture in momentum space using high-harmonic generation spectroscopy

机译:使用高谐波产生光谱法在动量空间中的二维转变偶极力矩纹理的可视化

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摘要

Highly nonlinear optical phenomena can provide access to properties of electronic systems which are otherwise difficult to access through conventional linear optical spectroscopies. In particular, high-harmonic generation (HHG) in crystalline solids is strikingly different from that in atomic gases, and it enables us to access electronic properties such as the band structure. Berry curvature, and valence electron density. Here, we show that polarization-resolved HHG measurements with band-gap resonant excitation can be used to probe the transition dipole moment (TDM) texture in momentum space in two-dimensional semiconductors. TDM is directly related to the internal structure of the electronic system and governs the optical properties. We study HHG in black phosphorus, which offers a simple two-band system. We observed a unique crystal-orientation dependence of the HHG yields and polarizations. Resonant excitation of band edge enables us to reconstruct the TDM texture related to the interatomic bonding structure. Our results demonstrate the potential of high-harmonic spectroscopy for probing electronic wave functions in crystalline solids.
机译:高度非线性光学现象可以提供对电子系统的性质的访问,否则难以通过传统的线性光学光谱难以进行。特别地,在原子气体中的结晶固体中的高谐波产生(HHG)与原子气中的闪烁地不同,并且它使我们能够访问诸如带结构的电子性质。浆果曲率和价电子密度。在这里,我们表明,具有带间隙共振激励的极化分辨的HHG测量可用于探测二维半导体中的动量空间中的过渡偶极力矩(TDM)纹理。 TDM与电子系统的内部结构直接相关,并控制光学性质。我们在黑色磷中研究HHG,提供简单的双频系统。我们观察了HHG产量和偏振的独特晶体取向依赖性。带边缘的共振激励使我们能够重建与内部粘合结构相关的TDM纹理。我们的结果表明,用于探测结晶固体中的电子波函数的高谐波谱的潜力。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第16期|L161406.1-L161406.6|共6页
  • 作者单位

    Department of Physics Graduate School of Science Kyoto University Kyoto Kyoto 606-8502 Japan;

    Femtosecond Spectroscopy Unit Okinawa Institute of Science and Technology Graduate University Okinawa 904-0495 Japan;

    Department of Physics Graduate School of Science Kyoto University Kyoto Kyoto 606-8502 Japan;

    Femtosecond Spectroscopy Unit Okinawa Institute of Science and Technology Graduate University Okinawa 904-0495 Japan;

    Department of Physics Graduate School of Science Kyoto University Kyoto Kyoto 606-8502 Japan;

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