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All-optical reconstruction of three-band transition dipole moments by the crystal harmonic spectrum from a two-color laser pulse
Author(s) -
Yue Qiao,
Yanqiu Huo,
Shicheng Jiang,
Yujun Yang,
Ji-Gen Chen
Publication year - 2022
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.446432
Subject(s) - laser , dipole , high harmonic generation , optics , harmonic spectrum , materials science , polarization (electrochemistry) , crystal (programming language) , second harmonic generation , electronic band structure , atomic physics , optoelectronics , physics , condensed matter physics , chemistry , quantum mechanics , computer science , programming language
When a bulk solid is irradiated by an intense laser pulse, transition dipole moments (TDMs) between different energy bands have an important influence on the ultra-fast dynamic process. In this paper, we propose a new all-optical method to reconstruct the k-dependent TDMs between multi-bands using a crystal high-order harmonic generation (HHG). Taking advantage of an obvious separation of bandgaps between three energy bands of an MgO crystal along the <001 > direction, a continuous harmonic spectrum with two plateaus can be generated by a two-color laser pulse. Furthermore, the first harmonic platform is mainly dominated by the polarization between the first conduction band and the valence band, and the second one is largely attributed to the interband HHG from the second conduction band and the valence band. Therefore, the harmonic spectrum from a single quantum trajectory can be adopted to map TDMs between the first, second conduction bands, and the valence one. Our work is of great significance for understanding the instantaneous properties of solid materials in the strong laser field, and will strongly promote the development of the HHG detection technology.

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