Showing posts with label R. Merlin. Show all posts
Showing posts with label R. Merlin. Show all posts

Tuesday, November 29, 2016

Abstract-Terahertz Spectrometer of Wavelength Dimensions Based on Extraordinary Transmission



Subwavelength-slotted parallel plate waveguides exhibit a localized electromagnetic resonance bound to the slits at a frequency slightly below the transverse electric cutoff [R. Merlin, Phys. Rev. X 2, 031015 (2012)]. The resonance is long-lived and, as opposed to the vanishingly small transmission shown by a single sub-wavelength aperture, it gives perfect transmission for perfectly-conducting plates. We show that the aperture-supported resonances of a pair of slotted copper plates have long lifetimes at THz frequencies. Finite element method calculations show that these bound resonances can have quality factors greater than 100. Effects of plate length and imperfect parallel alignment are also discussed. Using THz time domain spectroscopy, we measured the transmission of a broadband pulse through a test structure for several plate separations. These results suggest that the slotted waveguide can function as a highly compact THz spectrometer.

Tuesday, October 30, 2012

Abstract-GaP based terahertz time-domain spectrometer optimized for the 5-8 THz range



http://apl.aip.org/resource/1/applab/v101/i18/p181101_s1?bypassSSO=1

I. D. Vugmeyster,1 J. F. Whitaker2, and R. Merlin1

Department of Physics, The University of Michigan, Ann Arbor, Michigan 48109-1120, USA
2Center for Ultrafast Optical Science, The University of Michigan, Ann Arbor, Michigan 48109-2099, USA 


We use GaP to generate terahertz pulses via optical rectification in a collinear phase-matched configuration relying on the dispersion of the refractive index. The GaP-based time-domain system operates up to 8 THz and is especially well suited at high frequencies, where it has high signal-to-noise ratio and power conversion efficiency ∼30 times greater than those of commercial photoconductive emitters. These characteristics are demonstrated in measurements of ZnTe in the reflection geometry. We also discuss the power output and describe theoretically the observed THz field generation by nonlinear mixing, the field's free space propagation, and its detection.