• Chinese Optics Letters
  • Vol. 22, Issue 1, 011901 (2024)
Yudong Tao1, Wentao Zhu1, Yanfang Zhang1, Jingui Ma1, Jing Wang1、*, Peng Yuan1、**, Hao Zhang2, Heyuan Zhu2, and Liejia Qian1、3
Author Affiliations
  • 1Key Laboratory for Laser Plasma, Shanghai Jiao Tong University, Shanghai 200240, China
  • 2Key Laboratory of Micro and Nano Photonic Structures, Fudan University, Shanghai 200433, China
  • 3Tsung-Dao Lee Institute, Shanghai Jiao Tong University, Shanghai 200240, China
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    DOI: 10.3788/COL202422.011901 Cite this Article Set citation alerts
    Yudong Tao, Wentao Zhu, Yanfang Zhang, Jingui Ma, Jing Wang, Peng Yuan, Hao Zhang, Heyuan Zhu, Liejia Qian. Ultrabroadband second-harmonic generation via spatiotemporal-coupled phase matching[J]. Chinese Optics Letters, 2024, 22(1): 011901 Copy Citation Text show less
    (a) Exaggerated view of a fan-out QPM grating; (b) schematic setup of broadband SHG in spatially chirped QPM, which consists of two diffraction gratings (G1, G2) and two concave mirrors (M1, M2) arranged in a zero-dispersion 4f configuration; f is the focal length of the concave mirrors.
    Fig. 1. (a) Exaggerated view of a fan-out QPM grating; (b) schematic setup of broadband SHG in spatially chirped QPM, which consists of two diffraction gratings (G1, G2) and two concave mirrors (M1, M2) arranged in a zero-dispersion 4f configuration; f is the focal length of the concave mirrors.
    (a) Spatial-spectral and (b) spatiotemporal intensity profiles of the 1ω laser in the Fourier-plane; (c) spatial-spectral and (d) spatiotemporal intensity profiles of the 2ω laser in the Fourier-plane calculated under the assumption of perfect phase matching.
    Fig. 2. (a) Spatial-spectral and (b) spatiotemporal intensity profiles of the 1ω laser in the Fourier-plane; (c) spatial-spectral and (d) spatiotemporal intensity profiles of the 2ω laser in the Fourier-plane calculated under the assumption of perfect phase matching.
    (a) Local acceptance bandwidth of a 1 mm-long PPLN with a poling period of Λ0 = 2.81 µm; (b) optimum space-dependent poling period to match the spatial chirp of the 1ω beam (black line), in comparison with its linear approximation (red line).
    Fig. 3. (a) Local acceptance bandwidth of a 1 mm-long PPLN with a poling period of Λ0 = 2.81 µm; (b) optimum space-dependent poling period to match the spatial chirp of the 1ω beam (black line), in comparison with its linear approximation (red line).
    (a) Characterization of the spectral amplitude modulation arising from broadband frequency conversion using a multi-period PPLN; (b) second-harmonic spectra output from the PPLNs with the poling periods of Λ1 = 2.80 µm (magenta), Λ2 = 2.81 µm (blue), and Λ3 = 2.82 µm (green), respectively; (c) second-harmonic spectrum output from a multi-period PPLN with gratings of the three different periods calculated in (b).
    Fig. 4. (a) Characterization of the spectral amplitude modulation arising from broadband frequency conversion using a multi-period PPLN; (b) second-harmonic spectra output from the PPLNs with the poling periods of Λ1 = 2.80 µm (magenta), Λ2 = 2.81 µm (blue), and Λ3 = 2.82 µm (green), respectively; (c) second-harmonic spectrum output from a multi-period PPLN with gratings of the three different periods calculated in (b).
    (a) Conversion efficiency curve calculated for the broadband SHG in a spatially chirped QPM; (b), (c), (d) spectral, temporal, and spatial intensity profiles of the 2ω pulse right at the output plane of the fan-out PPLN; (e), (f), (g) spectral, temporal, and spatial profiles of the 2ω pulse right at the output of the second diffraction grating, G2.
    Fig. 5. (a) Conversion efficiency curve calculated for the broadband SHG in a spatially chirped QPM; (b), (c), (d) spectral, temporal, and spatial intensity profiles of the 2ω pulse right at the output plane of the fan-out PPLN; (e), (f), (g) spectral, temporal, and spatial profiles of the 2ω pulse right at the output of the second diffraction grating, G2.
    (a) Optimum space-dependent poling period Λopt (black line) calculated for the spatially chirped 1ω wave according to Eq. (16), in comparison with the local poling period Λ (red line) of the fan-out PPLN; (b) spectral intensity (black line) and wavelength-dependent phase mismatch (red line) of the 2ω pulse; (c) temporal intensity of the 2ω pulse corresponding to the 2ω spectrum shown in (b).
    Fig. 6. (a) Optimum space-dependent poling period Λopt (black line) calculated for the spatially chirped 1ω wave according to Eq. (16), in comparison with the local poling period Λ (red line) of the fan-out PPLN; (b) spectral intensity (black line) and wavelength-dependent phase mismatch (red line) of the 2ω pulse; (c) temporal intensity of the 2ω pulse corresponding to the 2ω spectrum shown in (b).
    Yudong Tao, Wentao Zhu, Yanfang Zhang, Jingui Ma, Jing Wang, Peng Yuan, Hao Zhang, Heyuan Zhu, Liejia Qian. Ultrabroadband second-harmonic generation via spatiotemporal-coupled phase matching[J]. Chinese Optics Letters, 2024, 22(1): 011901
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