Showing posts with label Monash University. Show all posts
Showing posts with label Monash University. Show all posts

Monday, May 9, 2016

UMD Researchers Make Breakthrough in Terahertz Technology


https://www.blogger.com/blogger.g?blogID=124073320791841682#editor/target=post;postID=5875769655979595840


University of Maryland (UMD) research team, in collaboration with Monash University and the United States Naval Research Laboratory, has invented a Tunable Large Area Hybrid Metal-Graphene Terahertz Detector, an innovation based upon a successful demonstration of plasmonic resonance in graphene micro-ribbons that are connected to metal electrodes, offering a critical step toward practical graphene terahertz optoelectronic devices.
Graphene, a two-dimensional lattice of pure carbon, is extremely conductive and has unique and advantageous electronic and optical properties that are ideal for a variety of applications, such as sensors, oscillators, electronic components, filters, detectors, and more. Graphene is especially useful in terahertz range, the part of electromagnetic spectrum between microwaves and infrared light, because the free electrons in the material oscillate collectively at these frequencies. The resonance frequency can be tuned by applying an electric voltage at the gate. Being able to tune the resonance frequency allows the resonator to be adjusted, making it usable in a broad range of applications.
“Terahertz technology has a wide variety of potential scientific and commercial applications, ranging from medical diagnosis and screening, manufacturing, security screening, communications, and biochemical sensing,” said Thomas Murphy, Professor of Electrical and Computer Engineering (ECE) and Director of the Institute for Research in Electronics and Applied Physics (IREAP). The invention may offer a dramatic improvement in the ability to increase the speed of short range wireless communication, cutting the amount of time needed to stream a very high quality content between devices. It may offer means ofimproved security scanning at airports.
Until now, using graphene in terahertz sensors has primarily been theoretical because graphene must touch a metal surface to read out the results or tune the sensor, and this was previously thought to inhibit the plasmonic resonance. But the team invented a new design that does not inhibit charge accumulation at the contact and allows the signal to transfer from the graphene to the metal electrical contacts much more effectively.
The research team includes Murphy; ECE graduate student Mehdi Jadidi; United States Naval Research Laboratory researcher D. Kurt Gaskill; Michael Fuhrer, Research Professor in the Department of Physics and the Center for Nanophysics and advanced-materials/” title=”View all articles about Advanced Materials here”>Advanced Materials and Professor of Physics at Monash University in Australia; Andrei Sushkov, Assistant Research Scientist in the Department of Physics and the Center for Nanophysics and advanced-materials/” title=”View all articles about Advanced Materials here”>Advanced Materials; and H. Dennis Drew, Research Professor in the Department of Physics and the Center for Nanophysics and Advanced Materials.
Electrical connection or antenna coupling to graphene is a problem that has puzzled theresearchers for many years, but the idea behind the team’s discovery originated with Jadidi.
The discovery has the potential to advance the field, and the team is excited to continue their research and further develop the technology in preparation for commercialization.
“We would be thrilled if this invention found near-term commercial applications,” said Murphy. “Perhaps the most promising short-term application would be for room-temperature tunable terahertz detectors.
The research was funded by the Office of Naval Research and National Science Foundation and was recently featured(link is external) in the American Chemical Society’s journal, Nano Letters.
The invention has been nominated by UMD’s Office of Technology Commercialization for the Invention of the Year award in the Physical Sciences category at the Celebration of Innovation and Partnerships on May 9th as part of the University of Maryland’s “30 Days of EnTERPreneurship.”
To learn more about the University of Maryland’s “30 Days of EnTERPreneurship,” visit: http://www.umd.edu/30Days/(link is external).

Sunday, September 7, 2014

A New Practical Use For Graphene Will Revolutionise Night Vision Technology



Researchers have developed a light detector which could revolutionise chemical sensing and night
vision technology.
In the latest issue of the journal Nature Nanotechnology, a team of researchers at Monash University, the University of Maryland in the US and the US Naval Research Laboratory have created a light detector based on graphene, a single sheet of interconnected carbon atoms.
The detector can detect light over an unusually broad range of wavelengths, including terahertz waves, which are between infrared and microwave radiation where sensitive light detection is most difficult.
Professor Michael Fuhrer at Monash says the research could lead to a generation of light detectors which could see below the surface of walls and other objects.
“We have demonstrated light detection from terahertz to near-infrared frequencies, a range about 100 times larger than the visible spectrum,” Professor Fuhrer says.
“Detection of infrared and terahertz light has numerous uses, from chemical analysis to night vision
goggles and body scanners used in airport security.”
Current applications for terahertz detection are limited, as they need to be kept extremely cold to maintain sensitivity.
Existing detectors that work at room temperature are bulky, slow and expensive.
Professor Fuhrer says the new detector works at room temperature and is already as sensitive as any existing room-temperature detector technology in the terahertz range but is also more than a million times faster.
The device is easily manufactured and could lead to inexpensive infrared cameras or night-vision goggles.