Matter News
Recent News |  Archives |  Tags |  About |  Newsletter |  Submit News |  Links |  Subscribe to MatterNews.com RSS Feed Subscribe
New Articles
Dancing droplets 11/21/2008

'Enlightened' atoms stage nano-riot againsts uniformity 11/20/2008

'Firefly' cubesat to study link between lightning and terrestrial gamma ray flashes 11/19/2008

Putting a new spin on current research 11/16/2008

Cold atoms could replace hot gallium in focused ion beams 11/15/2008

Iron-based materials may unlock superconductivity’s secrets 11/14/2008

Stretching silicon: A new method to measure how strain affects semiconductors 11/11/2008

The inaudible symphony analyzed 11/10/2008

Physicists create BlackMax to search for dimensions in space at the Large Hadron Collider 11/10/2008

Ultrafast lasers give CU-Boulder researchers a snapshot of electrons in action 11/9/2008

Very cold ice films in laboratory reveal mysteries of universe 11/8/2008

Electron pairs precede high-temperature superconductivity 11/7/2008

New spaceship force field makes Mars trip possible 11/4/2008

Searching for primordial antimatter 10/31/2008

New process promises bigger, better diamond crystals 10/29/2008

Research brings terahertz closer to everyday use (4/2/2008)

Tags:
terahertz radiation, t rays, lasers, quantum mechanics

A collaboration between the Universities of Leeds and Harvard has turned the heat up on terahertz technology, bringing a handheld terahertz device a step closer to reality.

The Leeds team, led by Professors Edmund Linfield and Giles Davies from the Faculty of Engineering, has recorded the highest operating temperature for a terahertz quantum cascade laser - a technology that scientists believe may unlock the potential of the terahertz frequency range.

Professor Linfield explains: "The potential uses for terahertz technology are huge, but at the moment they are limited to niche applications in, for example, the pharmaceutical industry and astronomy, as the current systems on the market are expensive and physically quite large. The availability of cheap, compact systems would open up a wide range of opportunities in fields including industrial process monitoring, atmospheric science, and medicine."

Key to exploiting terahertz technology is the production of handheld devices, and one specific type of laser - the quantum cascade laser - will allow the creation of a terahertz device that is small and portable. The problem is, at the moment this type of laser will only function at temperatures of minus 100°C.

So the challenge is to create a terahertz quantum cascade laser which will work at room temperature. While the groups from Leeds and Harvard are still a way off from this, they have succeeded in increasing the laser's operating temperature by nearly ten degrees, and believe they have the means to improve it yet further.

"We hope to obtain further advances by optimising the methods we used to create the device," explains Professor Linfield. "We have some radically new design ideas, and also believe that we can make significant improvements in the way we fabricate the lasers."

Terahertz quantum cascade lasers are created by building layers of compounds of aluminium, gallium and arsenic one atomic monolayer at a time, through a process known as molecular beam epitaxy. Leeds' Faculty of Engineering is one of a small number of laboratories in the world actively 'growing' terahertz quantum cascade lasers at this time, using a molecular beam epitaxy system purchased through the Science Research Infrastructure Fund (SRIF).

In molecular beam epitaxy, the chemicals evaporate from heated cells, and land on a heated, rotating, substrate. Minute changes in temperature, combined with a set of shutters that block the chemical beams, enable the team to adjust the amount of each chemical which is deposited on the substrate, gradually building up the layers they need. To ensure the device works perfectly, there must be no pollutants, so the process is carried out under ultra-high vacuum conditions, approaching the vacuum levels found in outer space.

The equipment and expert use of it by Professor Linfield and his team enabled them to create a device of superior quality. They now believe that they can bring handheld terahertz technology a step closer still.

The research, carried out in collaboration with the group of Professor Frederico Capasso at Harvard University, and supported by the Engineering and Physical Sciences Research Council (EPSRC) is published in Optics Express ( Vol. 16, Issue 5, pp. 3242-3248).

Note: This story has been adapted from a news release issued by the University of Leeds

Post Comments:

Search

  Archives |  Submit News |  Advertise With Us |  Contact Us |  Links
All contents © 2000 - 2009 Web Doodle, LLC. All rights reserved.