Photonics Research, Volume. 7, Issue 6, 678(2019)
Terahertz wave generation from liquid nitrogen
Fig. 1. Experimental setup. M–dielectric mirror; MM–metallic mirror; BS–beam splitter;
Fig. 2. Terahertz yield via the time delay between the laser pulses. (a) Single-color interaction in air (red circles) and in LN (black circles). (b) LN: single-color (black) and dual-color (blue) schemes. (c) Air: single-color (black) and dual-color (blue) schemes. Each curve is fitted by a simple Gaussian peak to get FWHM value.
Fig. 3. Dependence of terahertz pulse power on the beam waist position
Fig. 4. Radiated terahertz energy versus laser pulse energy: solid squares with error bars show experimental data, and solid line stands for theoretical model. (a) Focal spot located in the air; (b) focal spot located in the liquid nitrogen.
Fig. 5. Diagram of terahertz generation from “liquid” plasma under irradiation by a double-pulse beam.
Fig. 6. Schematic representation of the ambipolar field effect on the terahertz yield. (a) Field formation by the first pulse and probing by the second one; (b) total terahertz yield from two pulses with variable delay.
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Alexei V. Balakin, Jean-Louis Coutaz, Vladimir A. Makarov, Igor A. Kotelnikov, Yan Peng, Peter M. Solyankin, Yiming Zhu, Alexander P. Shkurinov, "Terahertz wave generation from liquid nitrogen," Photonics Res. 7, 678 (2019)
Category: Nonlinear Optics
Received: Feb. 8, 2019
Accepted: Apr. 10, 2019
Published Online: May. 28, 2019
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