• Chinese Optics Letters
  • Vol. 18, Issue 2, 023202 (2020)
Shijia Feng1, Liquan Dong1, Tong Wu1, Yong Tan1, Rui Zhang2、*, Liangliang Zhang3, Cunlin Zhang3, and Yuejin Zhao1、**
Author Affiliations
  • 1Beijing Key Laboratory for Precision Optoelectronic Measurement Instrument and Technology, School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China
  • 2Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China
  • 3Key Laboratory of Terahertz Optoelectronics, Ministry of Education, Beijing Key Laboratory for Terahertz Spectroscopy and Imaging, and Beijing Advanced Innovation Center for Imaging Technology, Department of Physics, Capital Normal University, Beijing 100048, China
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    DOI: 10.3788/COL202018.023202 Cite this Article Set citation alerts
    Shijia Feng, Liquan Dong, Tong Wu, Yong Tan, Rui Zhang, Liangliang Zhang, Cunlin Zhang, Yuejin Zhao. Terahertz wave emission from water lines[J]. Chinese Optics Letters, 2020, 18(2): 023202 Copy Citation Text show less
    (a) Schematic of the experiment system. PM1–PM3 are off-axis PMs. The inset illustrates the geometry of the interaction between the laser and the water line. In subsequent experiments, the water line moves primarily along the x axis. (b) and (c) THz time-domain and frequency-domain amplitudes generated by 0.2 mm water line at x=−0.07 mm and at α=0°.
    Fig. 1. (a) Schematic of the experiment system. PM1–PM3 are off-axis PMs. The inset illustrates the geometry of the interaction between the laser and the water line. In subsequent experiments, the water line moves primarily along the x axis. (b) and (c) THz time-domain and frequency-domain amplitudes generated by 0.2 mm water line at x=0.07mm and at α=0°.
    (a) THz peak electric field intensity as a function of x position with the water line diameter of 0.2 mm, 0.3 mm, 0.4 mm, and 0.5 mm, respectively. (b)–(e) THz time-domain waveforms at the x positions with maximum peak amplitude in different diameter water lines.
    Fig. 2. (a) THz peak electric field intensity as a function of x position with the water line diameter of 0.2 mm, 0.3 mm, 0.4 mm, and 0.5 mm, respectively. (b)–(e) THz time-domain waveforms at the x positions with maximum peak amplitude in different diameter water lines.
    (a) Relative positional relationship between the water line and the laser induced plasma (including the two-dimensional dipole array diagram) during the movement of the water line. (b) Normalized THz peak electric field strength as a function of the x position for the water line of 0.2 mm; the experimental and simulation results are shown by dots and line.
    Fig. 3. (a) Relative positional relationship between the water line and the laser induced plasma (including the two-dimensional dipole array diagram) during the movement of the water line. (b) Normalized THz peak electric field strength as a function of the x position for the water line of 0.2 mm; the experimental and simulation results are shown by dots and line.
    Experimental results of the angular distribution of THz energy produced by the water lines with three different diameters (0.2 mm, 0.3 mm, 0.4 mm) at the optimal x positions.
    Fig. 4. Experimental results of the angular distribution of THz energy produced by the water lines with three different diameters (0.2 mm, 0.3 mm, 0.4 mm) at the optimal x positions.
    Shijia Feng, Liquan Dong, Tong Wu, Yong Tan, Rui Zhang, Liangliang Zhang, Cunlin Zhang, Yuejin Zhao. Terahertz wave emission from water lines[J]. Chinese Optics Letters, 2020, 18(2): 023202
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