• Acta Optica Sinica
  • Vol. 43, Issue 15, 1532001 (2023)
Hang Zhao1、3, Yuejin Zhao1、3、*, Liangliang Zhang2, and Cunlin Zhang2
Author Affiliations
  • 1School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China
  • 2Department of Physics, Capital Normal University, Beijing 100048, China
  • 3Yangtze Delta Region Academy of Beijing Institute of Technology, Jiaxing 314019, Zhejiang, China
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    DOI: 10.3788/AOS230754 Cite this Article Set citation alerts
    Hang Zhao, Yuejin Zhao, Liangliang Zhang, Cunlin Zhang. Research Progress on Intense, Broadband, Terahertz Wave Radiation[J]. Acta Optica Sinica, 2023, 43(15): 1532001 Copy Citation Text show less
    Electron micrographs of the sample and experimental system. (a) Top view of metal surface; (b) metal cross section; (c) top view of AAO substrate surface; (d) diagram of Fourier transform Michelson device
    Fig. 1. Electron micrographs of the sample and experimental system. (a) Top view of metal surface; (b) metal cross section; (c) top view of AAO substrate surface; (d) diagram of Fourier transform Michelson device
    Terahertz spectra radiated by metal film[40]. (a) Experimental results; (b) theoretical simulation; (c) temperature of sample surface, below which is the temperature distribution along the diameter section
    Fig. 2. Terahertz spectra radiated by metal film[40]. (a) Experimental results; (b) theoretical simulation; (c) temperature of sample surface, below which is the temperature distribution along the diameter section
    Terahertz spectra under different pump power[43]. (a) Experimental results; (b) theoretical simulation; (c) temperature of sample surface, and the right shows the temperature distribution along the diameter section
    Fig. 3. Terahertz spectra under different pump power[43]. (a) Experimental results; (b) theoretical simulation; (c) temperature of sample surface, and the right shows the temperature distribution along the diameter section
    Intensity distribution of terahertz wave[43]. (a) 2D scan diagram; (b) 3D diagram
    Fig. 4. Intensity distribution of terahertz wave[43]. (a) 2D scan diagram; (b) 3D diagram
    Optical characteristics of metal films with different thicknesses[44]. (a) Scanning electron microscope (SEM) images of porous metal films with different thicknesses; (b) optical absorptivity as a function of the thickness of the porous metal films
    Fig. 5. Optical characteristics of metal films with different thicknesses[44]. (a) Scanning electron microscope (SEM) images of porous metal films with different thicknesses; (b) optical absorptivity as a function of the thickness of the porous metal films
    Terahertz waves radiated by metal films with different thicknesses[44]. (a) Measured THz-to-IR thermal radiation intensity as a function of the incidence angle emitted from nanostructured metal films with different thicknesses; (b) THz-to-IR emission intensity and resonant angle as a function of metal film thickness
    Fig. 6. Terahertz waves radiated by metal films with different thicknesses[44]. (a) Measured THz-to-IR thermal radiation intensity as a function of the incidence angle emitted from nanostructured metal films with different thicknesses; (b) THz-to-IR emission intensity and resonant angle as a function of metal film thickness
    Terahertz waves radiated by different metals[45]. (a)-(c) Terahertz intensity radiated by Ru, Pt, and Au in different gases varing with atmospheric pressure; (d) terahertz intensity of three metals varing with number of gas atoms at pressure of 105 Pa
    Fig. 7. Terahertz waves radiated by different metals[45]. (a)-(c) Terahertz intensity radiated by Ru, Pt, and Au in different gases varing with atmospheric pressure; (d) terahertz intensity of three metals varing with number of gas atoms at pressure of 105 Pa
    Terahertz wave radiated by gas plasma excited by long-wavelength laser[68]. (a) Experimental device; (b)(c) simulated and measured terahertz energy varing with incident pulse power
    Fig. 8. Terahertz wave radiated by gas plasma excited by long-wavelength laser[68]. (a) Experimental device; (b)(c) simulated and measured terahertz energy varing with incident pulse power
    Power dependence of terahertz wave radiated by plasma excited by long-wavelength laser[68]. (a) Ionization rate of different wavelength laser varing with the pump power; (b) terahertz energy varing with pump power
    Fig. 9. Power dependence of terahertz wave radiated by plasma excited by long-wavelength laser[68]. (a) Ionization rate of different wavelength laser varing with the pump power; (b) terahertz energy varing with pump power
    Polarization characteristics of terahertz wave radiation[68]. (a) Terahertz transmittance varing with the angle of the grid polarizer; (b) terahertz transmittance varing with polarization angle at different wavelengths
    Fig. 10. Polarization characteristics of terahertz wave radiation[68]. (a) Terahertz transmittance varing with the angle of the grid polarizer; (b) terahertz transmittance varing with polarization angle at different wavelengths
    Changes of normalized free electron density (above) and electron current (below) with time excited by 800, 1200, 1600 nm laser
    Fig. 11. Changes of normalized free electron density (above) and electron current (below) with time excited by 800, 1200, 1600 nm laser
    Terahertz spectra. (a) Normalization of terahertz spectra with different laser wavelengths; (b) normalized simulation of terahertz spectra with different laser wavelengths
    Fig. 12. Terahertz spectra. (a) Normalization of terahertz spectra with different laser wavelengths; (b) normalized simulation of terahertz spectra with different laser wavelengths
    Femtosecond laser modulated plasma[73]. (a)-(c) Photos of 1200, 1300, 1500 nm laser filament intersection; (d) experimental device
    Fig. 13. Femtosecond laser modulated plasma[73]. (a)-(c) Photos of 1200, 1300, 1500 nm laser filament intersection; (d) experimental device
    Terahertz energy varing with time of pre-ionized plasma modulation pulse[73]
    Fig. 14. Terahertz energy varing with time of pre-ionized plasma modulation pulse[73]
    Wavelength and power dependence of THz modulation depth[73]. (a) Variation of THz modulation depth with 800 nm pulse power at different pump wavelengths; (b) modulation depth of terahertz wave varing with the pump laser wavelength; (c) relationship between simulated THz modulation depth and 800 nm modulation power; (d) comparison between simulation results and experimental results of terahertz modulation depth changing with pump laser wavelength
    Fig. 15. Wavelength and power dependence of THz modulation depth[73]. (a) Variation of THz modulation depth with 800 nm pulse power at different pump wavelengths; (b) modulation depth of terahertz wave varing with the pump laser wavelength; (c) relationship between simulated THz modulation depth and 800 nm modulation power; (d) comparison between simulation results and experimental results of terahertz modulation depth changing with pump laser wavelength
    Polarization characteristics of terahertz transmittance[73]. (a)-(c) With/without pre-ionized plasma, the terahertz transmittance at excitation wavelengths of 1200, 1300, 1500 nm varing with the polarization angle of the linear grid polarizer; (d) relationship between the polarization angle of terahertz wave and the pre-pulse power under 1200, 1300, 1500 nm wavelength excitation
    Fig. 16. Polarization characteristics of terahertz transmittance[73]. (a)-(c) With/without pre-ionized plasma, the terahertz transmittance at excitation wavelengths of 1200, 1300, 1500 nm varing with the polarization angle of the linear grid polarizer; (d) relationship between the polarization angle of terahertz wave and the pre-pulse power under 1200, 1300, 1500 nm wavelength excitation
    Terahertz wave generated by two-color field with unusual frequency ratio[76]. (a) Schematic of experimental device; (b) terahertz autocorrelation signal when the frequency ratio of two-color field is 1∶4 and 2∶3; (c)(d) when one pulse is fixed at the wavelength of λ1=800 nm and λ1=400 nm, the change of terahertz intensity with the other pulse wavelength of λ2
    Fig. 17. Terahertz wave generated by two-color field with unusual frequency ratio[76]. (a) Schematic of experimental device; (b) terahertz autocorrelation signal when the frequency ratio of two-color field is 1∶4 and 2∶3; (c)(d) when one pulse is fixed at the wavelength of λ1=800 nm and λ1=400 nm, the change of terahertz intensity with the other pulse wavelength of λ2
    Polarization characteristics of terahertz wave[76]. (a)-(d) Horizontal and vertical components of terahertz energy changing with the polarization angle of 1600, 400, 1200, 800 nm pulse respectively
    Fig. 18. Polarization characteristics of terahertz wave[76]. (a)-(d) Horizontal and vertical components of terahertz energy changing with the polarization angle of 1600, 400, 1200, 800 nm pulse respectively
    Power dependence of terahertz wave[76]. (a)-(d) Terahertz energy changing with the power of 1600, 400, 1200, 800 nm pulse respectively
    Fig. 19. Power dependence of terahertz wave[76]. (a)-(d) Terahertz energy changing with the power of 1600, 400, 1200, 800 nm pulse respectively
    Terahertz wave generated by liquid plasma[84]. (a) Diagram of experimental system; (b) photos of laser focusing on water film; (c)(d) terahertz time domain waveforms from water and air plasma and the corresponding spectra
    Fig. 20. Terahertz wave generated by liquid plasma84. (a) Diagram of experimental system; (b) photos of laser focusing on water film; (c)(d) terahertz time domain waveforms from water and air plasma and the corresponding spectra
    Terahertz wave radiated by water film at different positions[84]
    Fig. 21. Terahertz wave radiated by water film at different positions84
    Changes of terahertz wave energy in horizontal and vertical directions with polarization angle of pump pulse[84]
    Fig. 22. Changes of terahertz wave energy in horizontal and vertical directions with polarization angle of pump pulse84
    Schematic of experimental device for generating terahertz wave by water line[85]
    Fig. 23. Schematic of experimental device for generating terahertz wave by water line[85]
    Terahertz wave generated by various media[85]. (a)-(c) Terahertz pulse generated by water column, water film, air; (d) corresponding spectra
    Fig. 24. Terahertz wave generated by various media[85]. (a)-(c) Terahertz pulse generated by water column, water film, air; (d) corresponding spectra
    Theoretical simulation of terahertz wave radiation[85]. (a) Terahertz pulse at xL=±60 µm; (b) terahertz intensity is a function of xL; (c) PIC results of quasi-static current
    Fig. 25. Theoretical simulation of terahertz wave radiation[85]. (a) Terahertz pulse at xL=±60 µm; (b) terahertz intensity is a function of xL; (c) PIC results of quasi-static current
    THz wave generation enhanced by a preformed plasma[87]. (a) THz signals individually generated by the P-polarized pre-pump and main-pump, and the THz signal generated by two beams with a certain time delay; (b) similar results are plotted when the pre-pump is S-polarized
    Fig. 26. THz wave generation enhanced by a preformed plasma[87]. (a) THz signals individually generated by the P-polarized pre-pump and main-pump, and the THz signal generated by two beams with a certain time delay; (b) similar results are plotted when the pre-pump is S-polarized
    Terahertz generation from liquid nitrogen (LN2)[88]. (a) Diagram of the apparatus for guiding a liquid nitrogen line; (b) photo of a flowing liquid nitrogen line; (c) detected THz waveforms from a water line (210 μm) and a liquid nitrogen line (400 μm)
    Fig. 27. Terahertz generation from liquid nitrogen (LN2)[88]. (a) Diagram of the apparatus for guiding a liquid nitrogen line; (b) photo of a flowing liquid nitrogen line; (c) detected THz waveforms from a water line (210 μm) and a liquid nitrogen line (400 μm)
    THz waves generated from air and a 210 μm-diameter line of water and gallium with a single-color excitation[89]. (a) Comparison of THz field strengths in air plasma, water, and liquid gallium; (b) corresponding comparison in spectra
    Fig. 28. THz waves generated from air and a 210 μm-diameter line of water and gallium with a single-color excitation[89]. (a) Comparison of THz field strengths in air plasma, water, and liquid gallium; (b) corresponding comparison in spectra
    Hang Zhao, Yuejin Zhao, Liangliang Zhang, Cunlin Zhang. Research Progress on Intense, Broadband, Terahertz Wave Radiation[J]. Acta Optica Sinica, 2023, 43(15): 1532001
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