Showing posts with label Dr. Joachim Jonuscheit. Show all posts
Showing posts with label Dr. Joachim Jonuscheit. Show all posts

Wednesday, June 24, 2015

Laser 2015: Terahertz technologies - a growing market


An imaging forum in Munich reviewed the remarkable progress of terahertz systems, fast developing a new marketplace.

http://optics.org/news/6/6/44
Applications of terahertz-based photonic systems are growing – whether in non-destructive industrial inspection of polymers or in security applications such as testing for hidden drugs or explosives. An optical metrology forum held yesterday at LASER 2015 reviewed a selection of recent developments, which are emerging from the laboratory and making waves in the marketplace.

Dr. Joachim Jonuscheit.
Dr. Joachim Jonuscheit.
In a presentation entitled” Terahertz systems for industrial applications”, Dr Joachim Jonuscheit, of the Fraunhofer Institute for Physical Measurement Techniques (IPM), described the two principle sources of terahertz radiation; femtosecond lasers, based on either Ti:Sa of frequency-doubled fiber lasers; and CW diode lasers, with their associated benefits and disadvantages.
“For industrial systems you really need fiber-couple d systems,” he said. “Due to their relatively higher stability and flexibility compared with terahertz generators based on free space optics.”
Dr Jonuscheit He also acknowledged some examples of the growing range of commercially available and in-research terahertz sources including the GaAs-based TPS Spectra 3000 from Teraview and other recent developments from Advanced PhotonixHübnerToptica PhotonicsBakman Technologies, and from his own lab at the Fraunhofer IPM.
He concluded, “Terahertz sources are now available from a range of different suppliers applications. Those based on femtosecond lasers generally offer a broader spectrum and are faster, meaning more spectra per second. Whereas those based on CW laser diodes have the advantage of offering higher spectral resolution and are also cheaper.”
Applications of terahertz
Subsequent presentations reviewed different applications of terahertz technologies, including:
  • Arno Neumeister.
    Arno Neumeister.
    Terahaertz Systems for Plastic Pipes by Arno Neumeister, of Inoex, which develops production and operations inspection systems for applications such as pipe-making. He commented, “Ultrasonic systems cannot measure foamcore pipes, for example, but for our terahertz system, the extra layer of air is actually an advantage”;
  • Terehaertz Imaging and Spectroscopy for Security applications by Dr Niklas Waasem, Sales Engineer Hübner. He described the security benefits of a terahertz approach as: “detecting anomalies in postal items [letter bombs/drugs]; and terahertz spectroscopy with our embedded evaluation software allows automatic identification of substances.”
  • The use of terahertz sensors – out of the lab and into the factory, was presented by Phil Taday, head of applications at Teraview, who stated, “Many common materials and living tissues are semi-transparent and have what you could call terahertz fingerprints, permitting them to be imaged, identified, and analyzed. Moreover, the non-ionizing properties of terahertz radiation and the relatively low power levels used, mean that it is safe.”
About the Author
Matthew Peach is a contributing editor to optics.org.

Thursday, January 2, 2014

Terahertz Spectrometer Reliably Identifies Explosives and Narcotics in Mail Pieces



Published on January 2, 2014 at 6:12 AM

Does that incoming postal dispatch hold merely a harmless letter – or a bomb? Does it possibly contain drugs? T-COGNITION, the terahertz spectrometer helps to swiftly clear-up the question. This analytical device reliably identifies explosives and narcotics in mail pieces, and is primarily suited for use at embassies, public offices and correctional facilities.

Letters can be pushed through an input lid into the spectrometer. These are then exposed on the inside to terahertz waves. Detectors collect the reflected and transmitted waves, and compare the spectra with those on a database. Within a few seconds, the data points light up either red or green on the screen of the device – depending on whether any hazardous substances were detected or not. The use of the technology has multiple advantages: Terahertz waves that lie within the electromagnetic spectrum between infrared and microwave are not dangerous, penetrate packaging materials and produce – depen- ding on what kind of materials they hit – characteristic spectra that can be swiftly analyzed with the aid of intelligent software.
T-COGNITION is the result of a research collaboration between the Fraunhofer Institute for Physical Measurement Techniques IPM in Kaiserslautern and the Kassel-based Hübner GmbH Co. KG that has since brought the Terahertz spectrometer on the market. The antennas on the inside of the compact device (60 x 72 x 73 centimeters) were engineered jointly by researchers at IPM and the Carnot Institute IEMN (Institut d’Electronique, Microélectronique et de Nanotechnologies) in Lille.

Fraunhofer Institute for Physical Measurement Techniques IPM
Erwin-Schrödinger-Straße / Geb. 56 | 67663 Kaiserslautern | www.ipm.fraunhofer.de
Contact: Dr. Joachim Jonuscheit | Phone +49 631 205-5107 |joachim.jonuscheit@ipm.fraunhofer.de
Press: Holger Kock | Phone +49 761 8857-129 | holger.kock@ipm.fraunhofer.de

Thursday, April 26, 2012

Seeing Inside the Nose of an Aircraft




Researchers are developing a new testing system that uses terahertz waves to completely scan the aircraft nose, which is several centimeters thick, and immediately identify any flaws.
This terahertz measurement system for non-destructive testing measures the thickness of multi-layered plastic films at a rate of 40 times per second. (Credit: Fraunhofer IPM)
My Note: This article comes shortly after Advanced Photonix announcements of their contract award with the IRPC consortium to inspect airplane structures. Please see articles listed.
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http://terahertztechnology.blogspot.com/2012/02/dr-irl-duling-director-of-terahertz.html
http://terahertztechnology.blogspot.com/2012/02/laser-shearography-chosen-as-primary.html
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By Fraunhofer-Gesellschaft
http://www.pddnet.com/news-seeing-inside-the-nose-of-an-aircraft-042612/
The planned arrival time, the request to land or the landing direction – this is the kind of information pilots discuss via radio with ground staff in the control tower.
The nose of the aircraft, the "radar dome", receives incoming radio signals and transmits radio signals sent by the pilot as well. It is made of a fiberglass composite. But if even tiniest imperfections arise during production — if, for instance, little foreign particles, drops of water or air bubbles become enclosed in the resin – over time they can cause fine cracks through which moisture can seep. This causes interference in radio traffic through the aircraft nose, introducing static into the signal.
As part of the Dotnac project, researchers at the Fraunhofer Institute for Physical Measurement Techniques IPM in Kaiserslautern are working with partners in industry and research to develop a new testing system: the system uses terahertz waves to completely scan the aircraft nose, which is several centimeters thick, and immediately identify any flaws.
The frequency of terahertz waves falls between that of microwaves on the one hand and infrared light on the other. They are completely harmless to humans. The waves are generated in a rolling cabinet not unlike those found in many offices: it contains a microwave source and all electronics to control the system and to collect the data.
Click Here

A frequency mixer multiplies the frequency of the microwave radiation generated into the terahertz range. Researchers have connected the actual measurement module to this container by means of electrical wires. This module emits the terahertz waves toward the radar dome. The material reflects the radiation, and the detector integrated in this module analyzes the reflected terahertz radiation. If there are any air bubbles or little imperfections embedded in the material, they turn up in the reflected signal.
The main challenge facing researchers was to find out which terahertz frequencies they would have to use to bombard the material to achieve the most effective results for the various imperfections. Higher frequencies create better resolution, while lower frequencies have less difficulty penetrating the material. The researchers select from a range of different frequencies depending on the errors the researchers are looking for in the case concerned.
The scientists have already developed a prototype of the testing system. It will be presented at the Control trade fair, May 8-11, in Stuttgart (Hall 1, stand 1502). Around a year from now, the scanner will have advanced to the point that it will scan and analyze aircraft noses automatically. Thus far, simple scanners for level and rotations symmetrical objects are available.
Researchers have come up with another terahertz testing system as well, one that analyzes the thickness of layers – such as are found on aircraft and cars. "Our terahertz measuring system is one of the few robust enough for industrial use," according to Dr. Joachim Jonuscheit, deputy head of department at Fraunhofer IPM.
Just like the system that checks aircraft noses, this one also consists of a rolling cabinet along with a transmitter and a receiver connected to the container by cables five meters long. This system works with very short terahertz pulses. Each pulse is partially reflected off of the interfaces of the layers: the surface of the first layer, the interface between layer one and two, and so on.

The deeper the layer reflecting the pulses, the longer the pulses take to return to the detector. Using the time each pulse takes to make its way back to the detector, built-in software automatically calculates the thickness of the various layers.
The system's great advantage is its robustness. But how did researchers accomplish this?
"First of all, we no longer shoot the laser that excites the system by open beam as typically used in terahertz systems; instead, we feed it through optical fibers. And secondly, we have fixed and arranged the optical elements to make them mechanically robust. We have also improved the manufacturing processes for the semiconductor components – the transmitters and detectors – to make the individual elements more resistant," Jonuscheit explains. At the Control trade fair, the researchers will demonstrate live measurements on multi-layered plastic films of varying thicknesses.
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Monday, April 16, 2012

On the safe side: Contact-free analysis of chemical substances




December 2011: Security forces intercept a letter bomb addressed to Josef Ackermann, the head of Deutsche Bank. At almost the same moment, a letter bomb explodes in an office in Rome. The hand of the manager in charge of Equitalia, the tax-collection authority, was injured. Until now, police officers or security staff have had to conduct painstaking inspections of any suspicious parcels and letters by hand - an error-prone approach. At the end of 2011, though, the scanner T-Cognition 1.0 from Hübner company of Kassel, Germany, went on the market. The device, developed with the assistance of Fraunhofer researchers, detects, without contact, substances such as drugs or explosives contained in unopened letters or flat packages. The partners will be demonstrating the scanner at the Analytica trade fair in Munich (April 17-19) at the joint Fraunhofer stand (Stand 433/530 in Hall A1).
„You place the suspicious parcels or letters in a kind of drawer, and the device uses terahertz waves to determine whether it contains explosives. This protects confidentiality, and the mail can then be delivered safely," explains Dr. Joachim Jonuscheit, deputy division director at the Kaiserslautern facility of the Fraunhofer Institute for Physical Measurement Techniques IPM and the researcher in charge of terahertz analysis there. The attacks in Rome and Frankfurt fueled the security industry's interest in the analysis device.
„Most dielectric materials, such as plastics, clothing or paper, are transparent to microwaves and can also be penetrated by terahertz waves with comparatively low reduction. For non-destructive non-destructive testing, the terahertz range is extremely interesting," the expert adds. On the electromagnetic spectrum, terahertz waves can be found at the junction between microwaves and infrared radiation. The frequency range extends from 100 GHz to 10 THz; this corresponds to a wavelength from 3 mm to 30 µm. Terahertz waves combine the benefits of the adjoining spectral ranges: high penetration depth and low scatter, accompanied by good spatial resolution and the capability of spectral identification of unknown substances.

T-Cognition identifies chemicals, explosives or drugs, quickly and contact-free. A database comparison identifies any suspicious spectra and displays them on screen.
(Photo Credit: Huebner GmbH)
Like radiation in the infrared range, Terahertz waves reveal a substance's spectral signature. The measurement device features a database with the spectral „fingerprints" of hazardous materials and can be extended to include additional materials at any time. The device compares the spectral fingerprint of the substance to analyze with values in its database and returns a clear result. The scanner operates using transmission and reflection analysis. In safety checks, the terahertz wave offers low-loss penetration of envelopes made of paper or plastic to detect any chemical substances within. If a package contains, say, metal – as housing for an explosive device – the wave is reflected and measured by the receiver. This is how suspicious packages can be identified quickly.
Now the researchers also want to gain a foothold in the pharmaceuticals and chemicals industries. „Up until now, makers of pharmaceuticals had to prepare extra samples if they wanted to find out whether the mixture ratio in a particular drug was right, whether the chemical was in the desired crystalline structure, and whether quality was all right," Jonuscheit points out. „Depending on the substance and the material involved, our device clearly detects all of the chemicals found. It also provides basic analysis of the mixture ratio of multiple substances. Terahertz analysis also allows conclusions about the substances' crystalline structure. For instance, you can determine whether a potentially unwanted recrystallization has taken place. In the future, this can spare chemicals and pharmaceuticals manufacturers painstaking preliminary analysis and sample preparation," the expert points out.