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Tunable spectral continuous shift of high-order harmonic generation in atoms by a plasmon-assisted shaping pulse

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【作者】 王源李玉龙乔月高娜郭福明陈洲赫兰海杨玉军赵曦王俊

【Author】 Yuan Wang;Yulong Li;Yue Qiao;Na Gao;Fu-Ming Guo;Zhou Chen;Lan-Hai He;Yu-Jun Yang;Xi Zhao;Jun Wang;Institute of Atomic and Molecular Physics, Jilin University;Jilin Provincial Key Laboratory of Applied Atomic and Molecular Spectroscopy, Jilin University;Beijing Institute of Space Launch Technology;School of Physics and Information Technology, Shaanxi Normal University;

【通讯作者】 赫兰海;杨玉军;赵曦;王俊;

【机构】 Institute of Atomic and Molecular Physics, Jilin UniversityJilin Provincial Key Laboratory of Applied Atomic and Molecular Spectroscopy, Jilin UniversityBeijing Institute of Space Launch TechnologySchool of Physics and Information Technology, Shaanxi Normal University

【摘要】 We delve into the phenomenon of high-order harmonic generation within a helium atom under the influence of a plasmon-assisted shaping pulse. Our findings reveal an intriguing manipulation of the frequency peak position in the harmonic emission by adjusting the absolute phase parameter within the frequency domain of the shaping pulse. This phenomenon holds potential significance for experimental setups necessitating precisely tuned single harmonics. Notably, we observe a modulated shift in the created harmonic photon energy, spanning an impressive range of 1.2 eV. This frequency peak shift is rooted in the asymmetry exhibited by the rising and falling edges of the laser pulse, directly influencing the position of the peak frequency emission. Our study quantifies the dependence of this tuning range and the asymmetry of the laser pulse, offering valuable insights into the underlying mechanisms driving this phenomenon. Furthermore, our investigation uncovers the emergence of semi-integer order harmonics as the phase parameter is altered. We attribute this discovery to the intricate interference between harmonics generated by the primary and secondary return cores. This observation introduces an innovative approach for generating semi-integer order harmonics, thus expanding our understanding of high-order harmonic generation. Ultimately, our work contributes to the broader comprehension of complex phenomena in laser-matter interactions and provides a foundation for harnessing these effects in various applications, particularly those involving precise spectral control and the generation of unique harmonic patterns.

【Abstract】 We delve into the phenomenon of high-order harmonic generation within a helium atom under the influence of a plasmon-assisted shaping pulse. Our findings reveal an intriguing manipulation of the frequency peak position in the harmonic emission by adjusting the absolute phase parameter within the frequency domain of the shaping pulse. This phenomenon holds potential significance for experimental setups necessitating precisely tuned single harmonics. Notably, we observe a modulated shift in the created harmonic photon energy, spanning an impressive range of 1.2 eV. This frequency peak shift is rooted in the asymmetry exhibited by the rising and falling edges of the laser pulse, directly influencing the position of the peak frequency emission. Our study quantifies the dependence of this tuning range and the asymmetry of the laser pulse, offering valuable insights into the underlying mechanisms driving this phenomenon. Furthermore, our investigation uncovers the emergence of semi-integer order harmonics as the phase parameter is altered. We attribute this discovery to the intricate interference between harmonics generated by the primary and secondary return cores. This observation introduces an innovative approach for generating semi-integer order harmonics, thus expanding our understanding of high-order harmonic generation. Ultimately, our work contributes to the broader comprehension of complex phenomena in laser-matter interactions and provides a foundation for harnessing these effects in various applications, particularly those involving precise spectral control and the generation of unique harmonic patterns.

【基金】 supported by the National Key Research and Development Program of China (Grant Nos. 2022YFE134200 and 2019YFA0307700);the National Natural Science Foundation of China (Grant Nos. 11604119, 12104177, 11904192, 12074145, and 11704147);the Fundamental Research Funds for the Central Universities (Grant Nos. GK202207012 and QCYRCXM-2022-241)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2024年03期
  • 【分类号】O53;O562
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