Showing posts with label Nathan Shammah. Show all posts
Showing posts with label Nathan Shammah. Show all posts

Wednesday, June 18, 2014

New quantum mechanism to trigger the emission of tuneable light at terahertz frequencies


My Note: This is is the same news I just posted but with additional information
http://www.nanowerk.com/nanotechnology-news/newsid=36102.php
Nanowerk News) Scientists have found that two-dimensional (2D) nanostructures with asymmetric design enable a new quantum mechanism, triggering the emission of tuneable light at terahertz frequencies-with unprecedented efficiency.
The researchers, from the University of Southampton and Imperial College London, found that quantum wells, 2D nanostructures formed of several layers of semi-conductor alloys placed on top of each other like a sandwich, can enhance light emission in a technological challenging spectral range.
It is hoped that the findings will have an impact on photonic and optoelectronic devices across a broad range of applications, including harmless medical imaging and security scanning.
Electrons are trapped in the structure and this confinement can be exploited to enhance their capacity to interact with light at given frequencies much lower than the laser frequency at which they are excited: the system emits light by interacting with "vacuum fluctuations" that permeate space, according to quantum theory.
An optoelectronic device formed of multiple quantum wells, whose design is optimised to maximise the dipole and thus its efficiency, emitting terahertz light
An optoelectronic device formed of multiple quantum wells, whose design is optimised to maximise the dipole and thus its efficiency, emitting terahertz light.
Nathan Shammah, from the University's Quantum Light and Matter (QLM) group and co-author of the study says: "As the 2D nanostructures can be manufactured with an asymmetric design, this allows light to interact with trapped electrons in a way that is not otherwise allowed. This interaction process, leading to the emission of light at lower frequencies, has not been observed in atoms because those are very symmetrical systems and symmetry rules prevent the transitions that trigger this light emission from happening."
In the paper, which is published in Physical Review B ("Terahertz emission from ac Stark-split asymmetric intersubband transitions"), the researchers predict that by shining light on a 2D asymmetric nanostructure with a laser that is tuned at resonance with the electronic transitions that can occur in the nanostructure, in addition to the scattered laser light, this 2D device would emit light at other frequencies, which can be tuned simply by changing the laser power.
Nathan, who co-authored the paper with Dr Simone De Liberato, from the QLM group, and Professor Chris Phillips from Imperial College London, adds: "Due to the large oscillating dipole and high density of electrons that characterise these 'artificial atoms' formed of asymmetric 2D structures, the control of light-matter coupling can be greatly enhanced, triggering spontaneous light emission, similar to what occurs in LEDs lamps.
"This new mechanism is perfectly suited for the terahertz frequency range, which spans from above the current wi-fi bandwidth to below the visible light spectrum, where the lack of practical light emitters constitutes a serious technological gap."
The high efficiency shown by the simulations suggests that this theoretical result could be exploited in the near future for a broad range of optoelectronic applications-from harmless medical imaging and security scanners, to short-range, ultra-fast wireless communication.
Source: University of Southampton


Read more: New quantum mechanism to trigger the emission of tuneable light at terahertz frequencies http://www.nanowerk.com/nanotechnology-news/newsid=36102.php#ixzz3501k4qUG 
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Researchers use asymmetry to generate tunable terahertz light



Graham Pitcher
http://www.newelectronics.co.uk/

University of Southampton researchers have found that two dimensional nanostructures with an asymmetric design can trigger the emission of tunable light at terahertz frequencies and say the system has unprecedented efficiency. 

The team, which also included researchers from Imperial College London, found that quantum wells can enhance light emission in a spectral range that is technically challenging.

Nathan Shammah, from Southampton University's Quantum Light and Matter group, said: "As the 2D nanostructures can be manufactured with an asymmetric design, this allows light to interact with trapped electrons in a way that is not otherwise allowed. This interaction process, leading to the emission of light at lower frequencies, has not been observed in atoms because those are very symmetrical systems and symmetry rules prevent the transitions that trigger this light emission from happening."

In their paper, published in Physical Review B, the researchers predict that, by targeting a 2D asymmetric nanostructure with laser light tuned at resonance with the electronic transitions that can occur in the nanostructure, the 2D device would emit light at frequencies which can be tuned simply by changing the laser power.

Shammah added: "This mechanism is perfectly suited for the terahertz frequency range, which spans from above the current Wi-Fi bandwidth to below the visible light spectrum, where the lack of practical light emitters constitutes a serious technological gap."

It is hoped the findings will have an impact on photonic and optoelectronic devices across a broad range of applications, including medical imaging and security scanning.

Wednesday, June 11, 2014

Abstract-Terahertz emission from ac Stark-split asymmetric intersubband transitions


Phys. Rev. B 89, 235309 – Published 11 June 2014
Nathan Shammah, Chris C. Phillips, and Simone De Liberato

https://journals.aps.org/prb/abstract/10.1103/PhysRevB.89.235309

Transitions between the two states of an ac Stark-split doublet are forbidden in centrosymmetric systems, and thus almost impossible to observe in experiments performed with atomic clouds. However, electrons trapped in nanoscopic heterostructures can behave as artificial atoms, with the advantage that the wave-function symmetry can be broken by using asymmetric confining potentials. Here we develop the many-body theory describing the intradoublet emission of a resonantly pumped intersubband transition in a doped asymmetric quantum well, showing that in such a system the intradoublet emission can be orders of magnitude higher than in previously studied systems. This emission channel, which lies in the terahertz range and whose frequency depends upon the pump power, opens the way to the realization of monolithic and tunable terahertz emitters.
DOI: http://dx.doi.org/10.1103/PhysRevB.89.235309
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