Showing posts with label Zomega. Show all posts
Showing posts with label Zomega. Show all posts

Friday, January 15, 2016

Taking Steps Toward Practical THz Technology


The potential for terahertz waves is enormous for imaging and communications applications—if practical semiconductor THz detectors and generators can be developed.
As “lower-frequency” applications, such as wireless communications, continue to consume bandwidth, researchers of imaging systems look beyond even the millimeter-wave range for available spectrum. For many applications, including materials research, medical diagnostics, and homeland-security systems, terahertz (THz) technology offers great promise. Located in that mysterious part of the electromagnetic (EM) spectrum where millimeter-wave EM energy makes the transition to infrared (IR) optical energy, THz imaging can provide greater focus and control than x-ray radiation.
Known as the “THz gap,” this band of the EM spectrum between about 300 and 3000 GHz (0.3 to 3 THz) contains signal wavelengths that are particularly useful for detecting dielectric differences in materials. It can be applied to a wide range of applications, from early detection of tooth decay to detection of hidden weapons and explosives. THz technology may even support high-data-rate, short-range wireless communications one day (see “Is Terahertz Li-Fi in Your Future?"). One key to realizing this promise will be the practical fabrication of semiconductor devices that can generate energy at THz frequencies. 
Much research has been conducted on this portion of the EM spectrum due to the versatility of these small-wavelength electro-optical signals for material analysis and medical diagnostic applications, including for early detection of cancer (Fig. 1). A great deal of progress has been made in the development of passive components, such as antennas, needed for THz systems through the application of microelectromechanical-systems (MEMS) technology and small-wavelength circuit transmission-line techniques like substrate-integrated-waveguide (SIW) technology.
1. THz technology offers great promise in medical diagnostics, including for early detection of cancers. (Courtesy of the University of Leeds)

THz Research
Still, lots of work must be done in the areas of generating and detecting electro-optical THz energy. The trend of decreasing power with increasing frequency that’s common to the millimeter-wave EM portion of the frequency spectrum continues into the THz range, with signal power hard to come by at THz frequencies.
Organizations such as the University of Leeds (Leeds, UK) and the Rensselaer Polytechnic Institute (Troy, N.Y.) and its RPI Center for THz Research have devoted much effort to the study of THz technologies and the development of practical semiconductor solutions for the generation of THz energy. Device developers for THz frequencies typically look to high-speed switching semiconductors, such as Impatt diodes, based on semiconductor substrates long associated with high-frequency analog and high-speed digital circuitry, including gallium arsenide (GaAs) and indium phosphide (InP).
In contrast to X-rays, researchers at RPI, with numerous patents on THz generation and detection, refer to THz energy as T-rays. With funding from a diverse group of investors, including the National Science Foundation, the U.S. Army Research Laboratory (ARL), and the Defense Advanced Research Projects Agency (DARPA), RPI’s research focuses on generating, measuring, and recording THz waves.
THz signal generation has included exploration of plasma-wave excitation in submicron field-effect transistors (FETs), including those based on GaAs substrates. The goal is to allow the THz laboratory to develop tunable, solid-state THz devices that will make many of the potential applications for THz technology possible and practical.
Not Out of GaAs
Sources of THz energy are not plentiful, although some suppliers of millimeter-wave components and equipment also extend their engineering efforts into the THz range. They include Insight Product Co. with THz frequency synthesizers and TeraSense with Impatt-diode THz generators (Fig. 2). Although solid-state devices for generation of THz energy are limited in availability, a number of firms offer commercial THz-based test and diagnostic equipment.
2. Many currently available THz sources are based on discrete semiconductor diodes, such as this Impatt-diode THz generator. (Courtesy of TeraSense)

For example, TeraView Ltd. developed three-dimensional (3D) THz-pulsed-imaging (TPI) technology that operates at room temperature. Products such as the firm’s TPS Spectra 3000 use high-speed lasers along with photoconductive semiconductor switches to generate and detect THz pulses without need of superconductors or cryogenic liquids to high-speed/high-frequency operation. A femtosecond laser operating at a wavelength of 800 nm and 100-fs pulse widths excites GaAs semiconductor substrate material to generate THz photon energy. Detection of the photon energy is performed by another GaAs semiconductor device excited by the same laser pulses.
Systems such as the TPS Spectra 3000 can measure the amplitude and phase of THz signals independently, to determine the absorption and refractive index of different materials in order to calculate the complex permittivity of those materials. This capability has clear benefits for materials analysis, such as analysis of semiconductor substrates and printed-circuit-board (PCB) laminates. However, it can also be used to find small defects in materials, like those mentioned earlier.
In addition, Advantest offers a number of THz imaging systems with coverage to 7 THz. The firm’s model TAS7400SU, for example, is a wideband system capable of operating from 0.5 to 7.0 THz. It generates and detects THz radiation, holding a sample for analysis within a sealed chamber. The system works with an external personal computer (PC) for control and data analysis. Two versions are available, each handling different operating temperature ranges (within the sample chamber): –10 to +80°C and +25 to +300°C. 
Zomega Terahertz Corp. enters the fray with a number of THz-based diagnostic tools, including its compact Mini-Z time-domain spectrometer. The spectroscopic material measurement system is compact enough to be transported to any research or industrial site for nondestructive analysis of samples. It’s designed to fit within small equipment cases about the size of a notebook computer. The firm offers standard and high-speed models for different measurement requirements, bringing portability to high-precision THz analysis.
Many THz test and diagnostic systems employ discrete devices rather than ICs. Wider application of cost-effective THz technology will depend on the development of more integrated THz transceiver options. Use of nanoscale fabrication methodologies with existing semiconductor technologies, such as GaAs FET and silicon biCMOS processes, could help realize the small circuit dimensions required for THz wavelengths.

As this technology’s potential becomes more apparent for applications in the medical-diagnostics and materials-analysis fields, among others, demand will take off. Strong efforts from research organizations around the world will continue to improve integrated THz device solutions, creating a more practical technology that’s destined to become widespread.

Thursday, February 20, 2014

Zomega Terahertz at Pittcon 2014, Chicago




See the possibilities
Website: www.z-thz.com
Zomega Terahertz at Pittcon 2014, Chicago
Terahertz system available for on site sample testing
  • Zomega technical staff available at the show
Contact us to arrange or schedule a consultation
 

Zomega Terahertz for Industry
 
Our state-of-the-art terahertz time-domain systems offer compact form factors, high data acquisition speeds, and a high level of integration that make them ready to operate in most indoor environments for non-destructive evaluation and quality control applications.
Coating thickness measurement in pharmaceutical products. Discontinuous index of refraction in the coating and core cause pulse reflections that can be used to mesure thickness.
Spectra of L- and D- forms for arginine aminoacid. Terahertz spectra can be used to determine form based on distinct spectral features.

Terahertz Analysis and Control Software

Successful implementation of terahertz technology requires innovation in both hardware and software. Our Terahertz Control and Analysis (TAC) software package implements a plug-in architecture that facilitates integration with other systems and development of custom applications and specific analyses. Contact us to find out how you can leverage the TAC platform to develop custom data acquisition and analysis with Zomega's systems.

Tuesday, January 28, 2014

Zomega Terahertz at Photonics West


My Note: I also got this email from Zomega this morning, which I wanted to share with readers.              
logo_blue

See the possibilities
Zomega Terahertz at Photonics West 2014
Terahertz systems available for on site sample testing
Wednesday 5th at 2:30pm, demo area 1 at South Hall ABC
  • Zomega technical staff available at the show
Contact us to arrange or schedule a consultation
 

Zomega Terahertz for Industry
 
Our state-of-the-art terahertz time-domain systems offer compact form factors, high data acquisition speeds, and a high level of integration that make them ready to operate in most indoor environments for non-destructive evaluation and quality control applications.
Coating thickness measurement in pharmaceutical products. Discontinuous index of refraction in the coating and core cause pulse reflections that can be used to mesure thickness.
USB stick (a) terahertz imaging. Time of flight data allows image different layers independently. (b) Internal structure of the stick. (c) Top layer.

Terahertz Analysis and Control Software

Successful implementation of terahertz technology requires innovation in both hardware and software. Our Terahertz Control and Analysis (TAC) software package implements a plug in architecture that facilitates the integration with other systems and the development of custom applications and specific analysis. Contact us to find out how you can leverage TAC platform to develop custom data acquisition and analysis with Zomega's systems.

Contact
Zomega Terahertz Corporation
15 Tech Valley Dr., Suite 102
East Greenbush, NY 12061, USA

Website: www.z-thz.com

Tuesday, September 10, 2013

A research group from UB identifies a signature in an artwork attributed to Goya with THz radiation

http://www.ub.edu/web/ub/en/menu_eines/noticies/2013/09/012.html

Image of the artwork <i>Sacrifice to Vesta</i> in the visible.
Image of the artwork Sacrifice to Vesta in the visible.
Image of the artwork with 50% visible and 50% THz.
Image of the artwork with 50% visible and 50% THz.
100% THz image.
100% THz image.
09/09/2013
Researchers from the University of Barcelona have studied an artwork attributed to Goya by means of Terahertz (THz) time-domain system, a non-destructive testing technique applied to the artwork. The study, published on the journal Optics Express, the fourth one ranked by impact factor in the field of optics, identifies a signature at the bottom right corner of the work that remain hidden to other techniques previously used.
According to Javier Tejada, professor of Fundamental Physics at the UB,: “it is the first time that THz are used to ‘see’ a signature; there is not any precedent in scientific literature”. The paper demonstrates the potential of THz imaging. THz radiation covers the part of electromagnetic spectrum between the microwave and far infrared bands. It constitutes a complementary technique along with X-ray and infrared imaging for the verification and authentication of artwork pieces through the detection of features that remain hidden to optical inspection.
The doctorate students Cristina Seco, first author of the paper, Víctor López and Gianluca Arauz, supported by Albert Redó, from the company Z-Omega (USA), participated in the research, led by Javier Tejada.
 
A new technique to ‘see’ artworks
The inspected artwork, entitled Sacrifice to Vesta, is a documented artwork that belongs to a private collection owned by the art patron Félix Palacios (Zaragoza) and was painted by Goya during his stay in Italy in 1771. The painting shows a priest who is performing the rite of the sacred fire to Vesta, the Goddess of the Hearth and Fire.
THz images are formed from the binding of 1 mm2 images obtained from the reflection of this radiation. THz waves reach several layers of paint and provide a three-dimensional image of the artwork. Moreover, THz radiation is absorbed and reflected in a different way depending on the type of pigment and material. This fact provides extra spectroscopic information about the materials used in the artwork.
In relation to the alleged signature, assuming that it was written using a pencil (basically carbon) and that the painting was covered by a top layer of finishing varnish that turned dark over time, it is expected that X-ray images cannot detect the signature because the surrounding canvas and the paint are very similar. In this case, THz waves are more sensitive to molecular composition and to the different reflectivity of carbon and the surrounding canvas, which provides the mechanism for the detection of the signature.
“Results offer new possible technological niches in which this technique may solve problems”, remarks Tejada. The group from the UB is now working on topics related to pharmacology, biomedicine or car industry. “In some years, this technology will come right into science to tackle new problems”, concludes the researcher.
The paper comes from a collaborative project between the Bosch i Gimpera Foundation of the UB and Goya in Aragon Foundation. The objective is to evaluate the use of new techniques to emit electromagnetic waves in non-destructive testing in order to analyse the pigments used in artworks.

Reference:
C. Seco-Martorell, V. López-Domínguez, G. Arauz-Garofalo, A. Redo-Sanchez, J. Palacios y J. Tejada. "Goya’s artwork imaging with Terahertz waves". Optics Express, July 2013. DOI: 10.1364/OE.21.017800
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Friday, March 8, 2013

Zomega has a new (free) THz eBook for IPad


My Note: I highly recommend this for lay readers of this blog. 
THz eBook for iPad
To help provide an introduction to THz technology and its applications, we've written a free THz eBook for the iPad that can be downloaded through the iBookstore at Apple. The iPad edition has several interactive features to help illustrate THz concepts, and we plan to continue updating the book in the months ahead. The iTunes page for the eBook can be found here. A reduced resolution PDF without the interactive features is available from our download site.

Thursday, December 6, 2012

Terahertz and Art Examination


My Note: The photograph below appears to have Irl Duling pictured on the right hand side, using  an Advanced Photonix, T-Ray 4000
I have worked on Terahertz for Art Examination between 2008-2011, and Terahertz was the main topic of my fellowship in Conservation Science at the Metropolitan Museum, New York. Terahertz finds application for Art Examination and Conservation. I was looking through my material on this topic and I found a nice educational video I made two years ago but I never published. I thought could be useful for somebody interested to Terahertz.
Terahertz investigation of a mummy
Among the various applications of Terahertz which we explored during my fellowship at the Metropolitan Museum there was also the examination on an Egyptian mummy. This study lead  to this publication: E. Cortes, A. Cosentino, I. N. Duling, K. Fukunaga, D. T. Mininberg, I. Stuenkel, M. Leona “Investigating the use of terahertz pulsed time domain reflection imaging for the study of fabric layers of an Egyptian mummy,” Journal of the European Optical Society, Rapid publications 6, 11040 (2011).
 It was nice to work with this method since you can do a lot of 2D and 3D imaging. It has application for sure due to its specific advantages over X-ray, but it is still too expensive so it will take time before it can be adopted by conservation industry. Though, future developments will probably make it affordable. Well, hope you enjoy the video!
Thanks go to Zomega and Picometrix, companies which provided the equipment and expertise and to all authors on the paper above who helped me during the great experience which is a fellowship at the Dept of Scientific Research at the Metropolitan Museum.

Tuesday, August 23, 2011

Assessment of terahertz spectroscopy to detect antibiotic residues in food and feed matrices








MY NOTE- THIS IS REALLY INTERESTING AND DEMONSTRATES YET ANOTHER PRACTICAL USE FOR THz.
http://pubs.rsc.org/en/Content/ArticleLanding/2011/AN/C0AN01016B



 We report the use of terahertz (THz) spectroscopy to explore the spectral properties of eleven antibiotics commonly used in livestock production. Eight of the eleven antibiotics showed specific fingerprints in the frequency range between 0.1 and 2 THz. The main spectral features of two antibiotics (doxycycline and sulfapyridine) were still detectable when they were mixed with three food matrices (feed, milk, and egg powder). These preliminary results indicate that THz spectroscopy could be suitable for screening applications to detect the presence of antibiotic residues in the food industry, with the prospect to allow inspections directly on the production lines. THz spectroscopy is a non-destructive, non-contact, and real-time technique that requires very little sample preparation. Moreover, THz radiation can penetrate plastic and paper, which enables the detection of antibiotics in packaged food.


Graphical abstract: Assessment of terahertz spectroscopy to detect antibiotic residues in food and feed matrices





Journal Cover:Analyst, 2011, 136, 1733-1738

Monday, May 16, 2011

TOPTICA focuses on Biophotonics, Quantum Optics, Terahertz and Test & Measurement at LASER 2011







At the forthcoming LASER exhibition, TOPTICA Photonics will display a number of innovative solutions with special focus on biophotonics, quantum optics, terahertz and test & measurement.
Biophotonics: Multi-Color & Multi-Photon
A highlight will be the new multi-laser engine iChrome MLE, which efficiently combines up to four different wavelengths in one single-mode fiber. This system was specially developed for multi-color applications like fluorescence microscopy and cytometry.
Furthermore, TOPTICA presents several new wavelengths and powers in the blue/green spectral range for the iBeam smart, most notably the first direct green wavelength (515 nm, 50 mW).
The latest addition to this product range is the new iBeam smart PT, a pigtailed diode laser featuring highest output powers and best long-term stability after a single-mode fiber.
The iChrome MLE, the iBeam smart and the iBeam smart PT all feature expedient technologies, such as SKILL (Speckle KILLer), FINE (Feedback Induced Noise Eraser) and COOLDC (Dura-Calibrated Constant Optical Output Level) or COOLAC (Constant Optical Output Level with Auto-Calibration feature).
For multiphoton microscopy TOPTICA presents three solutions: the FemtoFiber pro NIR, the compact FemtoFErb 780 nm, and in cooperation with BioPhotonic Solutions, Inc. a compact setup for shaping and compression of ultrashort pulses.
TOPTICA’s femtosecond fiber laser FemtoFiber pro SCIR along with the femtoFitTM demonstrate how to correct for the dispersion caused by optical elements in a microscope. Pulses with less than 10 fs are thus generated directly at the sample.
Quantum Optics: Rb-MOT and a 2 Watt laser for Na-cooling
A magneto-optical trap (MOT) with Rubidium atoms will be presented at the booth. The Rubidium atoms are cooled with a fiber coupled TA pro 780 and as hyperfine repumping laser a fiber coupled DL pro is used.
TOPTICA’s DigiLock – a versatile, digital controller with high bandwidth – and a compact module for saturation spectroscopy (CoSy) are used forstabilization of the DL pro. The cooling-laser is stabilized with a High Finesse wavelength meter.
Another highlight of TOPTICA’s broad selection of scientific diode lasers is a narrow-band continuous-wave system with 2 Watt output power at 589 nm. This system comes in the successful pro design and is perfectly suited for laser cooling and Bose Einstein condensation of Sodium atoms.
Terahertz: Three approaches for THz generation
For THz generation, TOPTICA presents three different technologies: timedomain and frequency-domain setups for THz spectroscopy, as well as high-power electronic systems for THz imaging.
Two compact and cost efficient laser sources running at 1.5 μm will be on display: the TeraBeam, a two-color cw-laser with fiber coupled antenna modules and a fiber based femtosecond laser, the FemtoFErb. The femtosecond laser is ideally suited for time-resolved THz spectroscopy. A compact time-domain THz system will be displayed at the booth in cooperation with Zomega Terahertz Corp.
In cooperation with the manufacturer Synview GmbH, the THz portfolio will be completed by an all-electronic source for 3D millimeter-wave imaging.
Test & Measurement: Power and Coherence
For applications in laser-based metrology, TOPTICA presents the BlueMode, a diode laser with high output power and a novel scheme for coherence stabilization. An active control guarantees permanent singlefrequency operation and opens new possibilities in interferometry/holography, quantum cryptography or Raman spectroscopy. The BlueMode is now available at 405 nm, 445 nm and 488 nm with an output power of up to 50 mW.
TOPTICA will present these and other systems live at booth B1.117. Visit the TOPTICA homepage for further preliminary information:www.toptica.com/laser_2011.htm.
Contact
Marketing Communication
Alena Bunk
Phone + 49 89 85837-123
Fax + 49 89 85837-200

Saturday, April 23, 2011

Focus on Zomega Terahertz Corporation



Recently, I've been fortunate to establish communication with Thomas Tongue, the CEO at Zomega Corporation, http://www.zomega-terahertz.com/. Thomas's bio, on the webpage, notes the following:
"With over twelve years of entrepreneurial and management experience, and a strong technical background founded in his Masters degree in Physics, Thomas bridges the gap between the technical potential of terahertz imaging and the market. His prior start-up experience includes co-founding Imagiware, Inc., an Internet solution provider focusing on web presence and software development, which he bootstrapped to profitability by mid-1996. Thomas earned his MBA from the Lally School of Management & Technology at Rensselaer Polytechnic Institute."


In responding to questions about Zomega, Tom writes:

"Hi Randy,
We recently opened a new section of our web site dedicated to THz Imaging which has some materials I think will be of general interest. This is in support of our Teracopia project whose primary goal is to distribute THz imaging data and supporting software under a Creative Commons license so that people can start to think about how to use this powerful new tool and what sort of data processing challenges are involved (they're non-trivial). So I'd invite you to have a look around that section and let me know what questions you might have."

The Teracopia project is found on the company webpage, here: http://www.zomega-terahertz.com/index.php?option=com_content&view=article&id=62&Itemid=60
Interesting material, and if some of you have specific questions, please post or send them to me, and I'll see if I can get Tom to answer some of them.

understood Tom's email to also express that he views the current state of THz  market development, (in this very early stage), to be one where the various THz companies, are not usually  in direct competition, but rather are creating specific tools for particular niches. Hence my understanding is, he didn't believe it would be helpful, or practical to compare differing applications because each system is employed in a particular context, which makes overall comparison difficult. I had a sense, that he views the THz community in a very " fraternal sense", and given the many years of struggle to bring  THz from the laboratory to practical/commercial use, I understand why this sense of  comradery would be present.

                       Zomega Terahertz Corporation - December 2010 - Front: Wendy Zhang, Dr. X.-C. Zhang, Thomas Tongue; Back: Dr. Ying Xu, Scott Stewart, Joshua Hernandez, Dr. Brian Schulkin, Justin St. James, Dr. Norman Laman, Dr. Chia-Chu Chen, Erick Tejada

Here's wishing Thomas Tongue, and the creative engineers and scientists working there the greatest success!
And thanks to Thomas for sharing a few thoughts with me, and you.