Showing posts with label Yung-Jun Yoo. Show all posts
Showing posts with label Yung-Jun Yoo. Show all posts

Monday, July 29, 2019

Abstract-Highly enhanced terahertz conversion by two-color laser filamentation at low gas pressures



Yung-Jun Yoo, Dogeun Jang, and Ki-Yong Kim



Fig. 1 Experimental setup for THz generation from two-color laser filamentation inside a long gas tube. The emitted THz radiation is refocused by an off-axis parabolic mirror onto a pyroelectric detector for energy measurement and an uncooled microbolometer focal plane array for imaging. Synchronized probe pulses at variable delays are used to measure THz waveforms via electro-optic sampling with a thin GaP crystal. The inset shows a long plasma filament in argon captured by optical side imaging.

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-27-16-22663

We present an experimental study on pressure-dependent terahertz generation from two-color femtosecond laser filamentation in various gases. Contrary to short-focusing geometry, we find that long filamentation yields higher terahertz energy at lower gas pressures in most gases. This counter-intuitive phenomenon occurs due to multiple peculiar properties associated with filamentation. In practice, filamentation in low-pressure argon provides a maximum laser-to-terahertz conversion efficiency of 0.1%, about 10 times higher than in atmospheric air. In addition, our pressure-dependent study reveals an anticorrelation between terahertz output energy and local plasma fluorescence brightness. This determines the absolute phase difference between two-color laser fields for maximal terahertz generation, as well as verifies the microscopic mechanism of terahertz generation in two-color laser mixing.
© 2019 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

Tuesday, April 9, 2019

Abstract-Spectral Characterization of a Microbolometer Focal Plane Array at Terahertz Frequencies


Dogeun Jang,  Malik Kimbrue, Yung-Jun Yoo, Ki-Yong Kim

https://ieeexplore.ieee.org/document/8613916

We have developed a method to characterize the spectral response of an uncooled microbolometer focal plane array at a broad range of terahertz (THz) frequencies (4–50 THz). This is achieved by using a spectrum-shaped blackbody radiator as a broadband THz source and measuring its spectral power with a Fourier transform infrared interferometer. With an additional measurement with a pyroelectric detector as a reference, the spectral response of the microbolometer relative to the pyroelectric reference is obtained with a signal-to-noise ratio of 100 over a > 50-THz bandwidth.