Showing posts with label Xiangfeng Wang. Show all posts
Showing posts with label Xiangfeng Wang. Show all posts

Saturday, April 20, 2019

Abstract-Significant enhancement of THz detectivity by lowering ZnTe crystal temperature in electro-optic sampling



Xuewei Ju, Deren Chen, Xingchen Chen, Tao Gao, Ying Chen, Jie Wang, Xiangfeng Wang

Fig. 1. (a) Experimental setup 1, in which ZnTe was placed in a cryostat as a detection…

https://www.sciencedirect.com/science/article/pii/S0925346719301831

The temperature of the ZnTe detection crystal in a THz time-domain system was tuned continuously from 300 K to 1.5 K to minimize phonon absorption, thus enhance its detectivity. The THz peak amplitude was observed to increase more than 10 times. To explain this phenomenon, the THz transmission spectra of the ZnTe crystal at different temperatures were also measured, and the refractive indexand absorption coefficient of the crystal were extracted. The experiments and theoretic analysis reveal that the significant detectivity enhancement is due to the reduced absorption of the THz field and phase matching change in the detection crystal with temperature decreasing, which makes the ZnTe crystal suitable for integrating with cryogenic applications.

Saturday, October 7, 2017

Abstract-Free-standing double-layer terahertz band-pass filters fabricated by femtosecond laser micro-machining



Yanzhang Lin, Haizi Yao, Xuewei Ju, Ying Chen, Shuncong Zhong, and Xiangfeng Wang

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-25-21-25125

We report on the fabrication and transmission properties of free-standing single-layer and double-layer THz bandpass filters. These filters are fabricated on aluminum foils using femtosecond laser micro-machining. The aluminum foils are periodically patterned with cross apertures with a total area of 1.75×1.75 cm2, also known as frequency-selective surfaces. Their terahertz transmission properties were simulated using the FDTD method and measured using a time-domain terahertz spectroscopy system. The simulation results agree with the measurements results very well. The performance of single-layer bandpass filters is as good as the commercial equivalents on the market. The double-layer filters show extraordinary transmission peaks with changing spacing between the two layers. We show the contour map of the electric field distribution across the apertures, and ascribe the new transmission peaks to the interference and coupling of surface plasmon polaritons between the two layers.
© 2017 Optical Society of America