Showing posts with label Peter U. Jepsen. Show all posts
Showing posts with label Peter U. Jepsen. Show all posts

Friday, June 21, 2019

Abstract-Terahertz spectroscopy from air plasmas created by two-color femtosecond laser pulses: The ALTESSE project



L. Bergé, K. Kaltenecker, S. Engelbrecht, A. Nguyen, S. Skupin, L. Merlat, B. Fischer, B. Zhou, I. Thiele, Peter U. Jepsen,

https://iopscience.iop.org/article/10.1209/0295-5075/126/24001

Terahertz pulses are very popular because of their numerous applications, for example in security. Located between microwaves and optical waves in the electromagnetic spectrum, their spectral domain can now be exploited for molecular spectroscopy using terahertz emission from plasmas formed by femtosecond laser pulses ionizing gases such as air. Downconversion of broadband optical spectra in a plasma produces intense radiation suitable for the detection of suspect materials remotely. The different physical mechanisms involved to create terahertz radiation by laser-matter interaction are reviewed. The new potentialities offered by intense ultrafast lasers allow the acquisition of unique spectral signatures characterizing various materials.

Saturday, July 7, 2018

Abstract-Conductivity mapping of graphene on polymeric films by terahertz time-domain spectroscopy



Patrick R. Whelan, Deping Huang, David Mackenzie, Sara A. Messina, Zhancheng Li, Xin Li, Yunqing Li, Timothy J. Booth, Peter U. Jepsen, Haofei Shi, Peter Bøggild,

https://www.osapublishing.org/oe/fulltext.cfm?uri=oe-26-14-17748

Fast inline characterization of the electrical properties of graphene on polymeric substrates is an essential requirement for quality control in industrial graphene production. Here we show that it is possible to measure the sheet conductivity of graphene on polymer films by terahertz time-domain spectroscopy (THz-TDS) when all internally reflected echoes in the substrate are taken into consideration. The conductivity measured by THz-TDS is comparable to values obtained from four point probe measurements. THz-TDS maps of 25x30 cm2 area graphene films were recorded and the DC conductivity and carrier scattering time were extracted from the measurements. Additionally, the THz-TDS conductivity maps highlight tears and holes in the graphene film, which are not easily visible by optical inspection.
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