Showing posts with label René Beigang. Show all posts
Showing posts with label René Beigang. Show all posts

Sunday, September 22, 2019

Abstract-Modification of spintronic terahertz emitter performance through defect engineering

Dennis M. Nenno, Laura Scheuer, Dominik Sokoluk, Sascha Keller, Garik Torosyan, Alexander Brodyanski, Jörg Lösch, Marco Battiato, Marco Rahm, Rolf H. Binder, Hans C. Schneider, René Beigang,  Evangelos Th. Papaioannou


https://www.nature.com/articles/s41598-019-49963-8

Spintronic ferromagnetic/non-magnetic heterostructures are novel sources for the generation of THz radiation based on spin-to-charge conversion in the layers. The key technological and scientific challenge of THz spintronic emitters is to increase their intensity and frequency bandwidth. Our work reveals the factors to engineer spintronic Terahertz generation by introducing the scattering lifetime and the interface transmission for spin polarized, non-equilibrium electrons. We clarify the influence of the electron-defect scattering lifetime on the spectral shape and the interface transmission on the THz amplitude, and how this is linked to structural defects of bilayer emitters. The results of our study define a roadmap of the properties of emitted as well as detected THz-pulse shapes and spectra that is essential for future applications of metallic spintronic THz emitters.

Saturday, April 7, 2018

Abstract-Efficient Terahertz Generation Using Fe/Pt Spintronic Emitters Pumped at Different Wavelengths



Recent studies in spintronics have highlighted ultrathin magnetic metallic multilayers as a novel and very promising class of broadband terahertz radiation sources. Such spintronic multilayers consist of ferromagnetic (FM) and non-magnetic (NM) thin films. When triggered by ultrafast laser pulses, they generate pulsed THz radiation due to the inverse spin-Hall effect, a mechanism that converts optically driven spin currents from the magnetized FM layer into transient transverse charge currents in the NM layer, resulting in THz emission. As THz emitters, FM/NM multilayers have been intensively investigated so far only at 800-nm excitation wavelength using femtosecond Ti:sapphire lasers. In this work, we demonstrate that an optimized spintronic bilayer structure of 2-nm Fe and 3-nm Pt grown on 500 {\mu}m MgO substrate is just as effective as a THz radiation source when excited either at {\lambda} = 800 nm or at {\lambda} = 1550 nm by ultrafast laser pulses from a fs fiber laser (pulse width close to 100 fs, repetition rate around 100 MHz). Even with low incident power levels, the Fe/Pt spintronic emitter exhibits efficient generation of THz radiation at both excitation wavelengths. The efficient THz emitter operation at 1550 nm facilitates the integration of such spintronic emitters in THz systems driven by relatively low cost and compact fs fiber lasers without the need for frequency conversion.

Tuesday, July 12, 2016

Extending terahertz technology to obtain highly accurate thickness of automotive paint

http://phys.org/news/2016-07-terahertz-technology-highly-accurate-thickness.html

Now automotive body paint jobs get a major boost from the rapidly emerging field of terahertz (THz) technology used to improve the precision and quality control of layered paint coatings.

In a novel approach to industrial applications of THz technology, a team of German researchers began from the principle that thicknesses of multi-layered paint coatings can be measured using time-of-flight measurements of ultrashort THz pulses. The model they developed obtained a new level of precision in measuring individual coating layers. Their report appears in the current issue of Applied Physics Letters.
Developed by a team of investigators from the University of Kaiserslautern and Fraunhofer Institute for Physical Measurement Techniques in Kaiserslautern, the algorithm-informed computer model resolves individual paint layer thicknesses within multilayered paint samples well below ten microns—seven microns is typical—and down to four microns under certain constraints. A micron—also called a micrometer—is one thousand times smaller than a millimeter, many times smaller than the diameter of a human hair.
"By introducing an advanced regression procedure with a self-calibration model, our approach presents a framework that takes into consideration real industrial challenges such as the effect of wet-on-wet spray in the painting process. This is important because the multi-layer car coating process is complex, and a new approach is needed to improve vehicle paint ," explained René Beigang, the study's lead researcher.
THz technology uses non-ionizing radiation that occurs on the electromagnetic spectrum between microwave energy and infrared light waves, with frequency ranges from 0.3 THz to 10 THz. Invisible to the unaided eye, THz energy is considered non-destructive and non-invasive, and has many desirable analytical and industrial properties. It penetrates a variety of non-conducting materials and passes through common materials such as clothing, plastic, wood and paper. Excitement over its potential in a range of disciplines is rapidly building as teams race to harness it for uses as diverse as medical imaging to airport security checks.
The gist of their work is this: The time trace of a typical reflected pulse shows that there is a reflection from the front surface and substrate, as well as from each interface between different paint layers. From the time delay between consecutive reflected pulses the thickness of the layer can be deduced.
"By scanning the THz beam across the sample a 2-D image of the layer thicknesses of each individual layer can be obtained," Beigang explained.
He added that conventional approaches for automotive paint thickness measurements are limited due to the complexity of the multi-step painting process. Typically, five layers of thin coatings, including zinc phosphate, e-coat, primer or filler, basecoat and clearcoat, are deposited on the vehicle surface.
"New possibilities to overcome these restrictions have been shown by terahertz radiation," he said.
Results show this new approach is suitable to measure individual  coatings on a variety of materials. These include metallic substrates, carbon-fiber-reinforced polymers, and on dielectric substrates—all with high accuracy.
"We believe our results with terahertz waves show we have successfully managed them to develop an extremely precise approach to help improve an industrial process involving multi-layered automotive paints," said Beigang.
More information: Highly accurate thickness measurement of multi-layered automotive paints using terahertz technology, Applied Physics LettersDOI: 10.1063/1.4955407


Wednesday, May 21, 2014

Inspecting letters with terahertz waves



The prize-winning team presents terahertz scanner for the secure identification: Professor René Beigang and Thorsten Sprenger (from left to right). Credit: Dirk Mahler/Fraunhofer
Is it a harmless parcel or a bomb, an innocent letter or a drug shipment? A new terahertz scanner is capable of detecting illicit drugs and explosives sent by post without having to open suspicious packages or envelopes

Alert at Schloss Bellevue. A suspicious letter addressed to German President Joachim Gauck has been detected, which might contain a bomb. Not willing to take any risks, the bomb squad is called out to destroy the package. Later investigations revealed that the envelope did not contain any explosives, but better safe than sorry. A year ago, this event created turmoil in the mail sorting office in Berlin, because at the time there was no safe and simple way of reliably detecting the presence of explosives or drugs in letters and small packets. A new solution is offered by the terahertz scanner developed by researchers at the Fraunhofer Institute for Physical Measurement Techniques IPM in Kaiserslautern in collaboration with Hübner GmbH & Co. KG in Kassel. Their T-COGNITION system is capable of detecting and identifying the hidden content of suspicious packages or envelopes without having to open them. One of this year's Joseph von Fraunhofer prizes was awarded to Prof. Dr. René Beigang of Fraunhofer IPM and Dipl.-Ing. Thorsten Sprenger, Head of Public Security and Photonics at Hübner, for their work on the terahertz scanner for the secure identification of hazardous materials and illicit drugs in postal consignments.
But why did the scientists choose to use  for this application? Professor René Beigang explains: "The terahertz range lies midway between microwave and infrared in the electromagnetic spectrum, and thus combines the advantages of both." Like microwaves, these low-energy frequencies can easily penetrate paper, wood, lightweight fabrics, plastics, and ceramics. Moreover, terahertz waves generate characteristic spectra depending on the type of material they travel through, which can be analyzed quickly using intelligent software. A further significant advantage is that terahertz waves are non-ionizing and therefore safe to use in an unprotected environment, unlike X-rays. This makes the technology an interesting option for use in mail scanners.
Scaling up terahertz technology for industrial applications
Terahertz technology is still in its infancy, and until now it has found relatively few applications. The department of Material Characterization and Testing at the University of Kaiserslautern, sponsored jointly by Fraunhofer IPM and the Land of Rheinland-Pfalz, hopes to change this situation. "Our goal is to scale up  and extend its range of use to include security applications," says Beigang. The engineers at Hübner were among the first to recognize the potential of the Fraunhofer researchers' work. The company's traditional line of business is manufacturing key components for the transportation industry (e.g. rail vehicles, buses, airport technology, automotive). A new division for public security was added in 2006, when the company first started to look for cooperation partners. The mail scanner project was launched four years later, based on previous joint development projects. In the meantime, the company has brought its T-COGNITION solution onto the market.

This is how the mail scanner works. Suspicious envelopes and packages are fed into the scanner on a retractable tray. They are then exposed to terahertz waves which are absorbed at different frequencies within the spectral range depending on the substance they travel through (characteristic absorption properties). Detectors at the output of the scanner record the transmitted wavelengths. "Within a few seconds, T-COGNITION produces a spectroscopic fingerprint that allows the detected hazardous material to be compared with database samples and definitively identified," says Thorsten Sprenger.
The system triggers an alarm if the consignment contains explosives or .The system is capable of examining the content of postal items up to C4 format with a thickness of up to two centimeters. Sprenger says: "It is the ideal mailroom solution for prisons, customs offices, government agencies, company headquarters, and embassies or consulates, because it helps to improve security and protect human lives."
T-COGNITION recently received the PrismAward, the equivalent of an Oscar in the photonics world, at the Photonics West 2014 international congress in San Francisco.

Award-winning Letter Bomb Detector



SOURCE HUEBNER GmbH & Co. KG

Thursday, June 13, 2013

Abstract-In-plane focusing of terahertz surface waves on a gradient index metamaterial film


 
http://www.opticsinfobase.org/ol/abstract.cfm?uri=ol-38-12-2156

We designed and implemented a gradient index metasurface for in-plane focusing of confined terahertz (THz) surface waves. We measured the spatial propagation of the surface waves by two-dimensional mapping of the complex electric field using a THz near-field spectroscope. The surface waves were focused to a diameter of 500 μm after a focal length of approximately 2 mm. In the focus, we measured a field amplitude enhancement of a factor of 3.
© 2013 Optical Society of America