Showing posts with label University of Geneva. Show all posts
Showing posts with label University of Geneva. Show all posts

Wednesday, July 10, 2019

On-demand control of terahertz and infrared waves with graphene



https://www.nanowerk.com/nanotechnology-news2/newsid=53138.php
(Nanowerk News) The ability to control infrared and terahertz waves using magnetic or electric fields is one of the great challenges in physics that could revolutionise opto-electronics, telecommunications and medical diagnostics. A theory from 2006 predicts that it should be possible to use graphene in a magnetic field not only to absorb terahertz and infrared light on demand but also to control the direction of the circular polarisation. Researchers from the University of Geneva (UNIGE), Switzerland, and the University of Manchester have succeeded in testing this theory and achieved the predicted results.
The study, published in the journal Nature Nanotechnology ("Colossal infrared and terahertz magneto-optical activity in a two-dimensional Dirac material"), shows that the scientists found an efficient way to control infrared and terahertz waves. It also shows that graphene is keeping its initial promises, and is making its way to be the material of the the future, whether on earth or in space.

The experimental device that focused infrared and terahertz radiation on small samples of pure graphene in the magnetic field, built by the UNIGE team. (Image: Ievgeniia Nedoliuk, UNIGE)
“There exist a class of the so-called Dirac materials, where the electrons behave as if they do not have a mass, similar to the light particles, the photons”, explains Alexey Kuzmenko, a researcher in the Department of Quantum Matter Physics in UNIGE’s Science Faculty, who conducted this research together with Ievgeniia Nedoliuk. One of such materials is graphene, a monolayer of carbon atoms arranged in honeycomb structure, analogue to graphite used, in particular to make pencils.
The interaction between graphene and light suggests that this material could be used to control infrared and terahertz waves. “That would be a huge step forward for optoelectronics, security, telecommunications and medical diagnostics,” points out the Geneva-based researcher.

Backing up an old theory via experimentation

A theoretical prediction from 2006 posited that if a Dirac material, is placed in a magnetic field, it will produce a very strong cyclotron resonance. “When a charged particle is in the magnetic field, it moves on a circular orbit and absorbs the electromagnetic energy at the orbiting, or cyclotron, frequency, as for example it happens in the Large Hadron Collider at CERN”, explains Alexey Kuzmenko. “And when the particles have charge but no mass, as electrons in graphene, the absorption of light is at its maximum!”
To demonstrate this maximum absorption, the physicists needed a very pure graphene, so that the electrons travelling long distances would not scatter on impurities or crystal defects. But this level of purity and lattice order are very difficult to obtain and are only achieved when graphene is encapsulated in another two-dimensional material – boron nitride.
The UNIGE researchers teamed up with the group from the University of Manchester led by André Geim – the 2010 Nobel Prize winner in Physics for discovering graphene – to develop extremely pure graphene samples. These samples, which were exceptionally large for this type of graphene, were nevertheless too small to quantify the cyclotron resonance with well-established techniques. This is is why the Geneva researchers built a special experimental setup to concentrate the infrared and terahertz radiation on small samples of pure graphene in the magnetic field. “And the result of the experiment confirmed the theory from 2006!” adds Alexey Kuzmenko.

Custom-controlled polarisation

The results demonstrated for the first time that a colossal magneto-optical effect occurs indeed if a layer of pure graphene is used. “The maximum possible magneto-absorption of the infrared light is now achieved in a monoatomic layer,” says Alexey Kuzmenko.
In addition, the physicists found that it was possible to choose which circular polarisation – left or right – should be absorbed.
“Natural or intrinsic graphene is electrically neutral and absorbs all the light, regardless of its polarisation. But if we introduce electrically charged carriers, either positive or negative, we can choose which polarisation is absorbed, and this works both in the infrared and terahertz ranges,” continues the scientist.
This ability plays a crucial role, especially in the pharmacy, where certain key drug molecules interact with light depending on polarization direction. Interestingly, this control is considered promising for the search of life on exoplanets, since it is possible to observe the signatures of the molecular chirality inherent in the biological matter.
Finally, the physicists found that to observe a strong effect in the terahertz range, it is sufficient to apply magnetic fields, which could be generated already by inexpensive permanent magnet .
Now that the theory has been confirmed, the researchers will continue to work on magnetically adjustable sources and detectors of terahertz and infrared light.

Tuesday, March 7, 2017

Towards mastering terahertz waves?


                                      Graphene based device is shown. CREDIT ©UNIGE
Scientists from the University of Geneva have perfected a technique based on the usage of graphene, that allows for terahertz waves to be controlled accurately, paving the way for numerous applications

UNIVERSITÉ DE GENÈVE
The terahertz waves span frequency ranges between the infrared spectrum (used, for example, for night vision) and gigahertz waves (which find their application, among other, in Wi-Fi connections). Terahertz waves allow for the detection of materials that are undetectable at other frequencies. However, the use of these waves is severely limited by the absence of suitable devices and materials allowing to control them. Researchers at the University of Geneva (UNIGE), working with the Federal Polytechnic School in Zurich (ETHZ) and two Spanish research teams, have developed a technique based on the use of graphene, which allows for the potentially very quick control of both the intensity and the polarization of terahertz light. This discovery, presented in Nature Communications, paves the way for a practical use of terahertz waves, in particular for imaging and telecommunications.
Graphene is a single atomic layer of carbon atoms that form a honeycomb network. It is found for example in graphite, the main constituent of pencil rods. In the Department of Quantum Matter Physics of UNIGE's Faculty of Sciences, Alexey Kuzmenko's team has been working on graphene's physical properties for several years. "The interaction between terahertz radiation and the electrons in graphene is very strong and we have therefore come to the hypothesis that it should be possible to use graphene to manage terahertz waves," Kuzmenko explains.
Working within the framework of the European project Graphene Flagship, scientists have made a graphene-based transistor adapted to terahertz waves. "By combining the electrical field, which enables us to control the number of electrons in graphene and thus allows more or less light to pass through, with the magnetic field, which bends the electronic orbits, we have been able to control not just the intensity of the terahertz waves, but also their polarisation," comments Jean-Marie Poumirol, a member of the UNIGE research team and the first author of the study. "It is rare that purely electrical effects are used to control magnetic phenomena." Scientists are now able to apply such control over a complete range of terahertz frequencies.

Practical applications of terahertz waves

Today, the UNIGE research team's focus is to move on from the prototype, and develop practical applications and new opportunities by controlling terahertz waves. Their objective is to make terahertz waves industrially competitive in the next few years. There are two main areas of application for this innovation, the first being communications. "Using a film of graphene associated with terahertz waves, we should be potentially able to send fully-secured information at speeds of about 10 to 100 times faster than with Wi-Fi or radio waves, and do it securely over short distances," explains Poumirol. This would present a significant advantage in telecommunications. The second sphere of application is that of imaging. Being non-ionising, terahertz waves do not alter DNA and therefore are very useful in medicine, biology and pharmacy. Additionally, the control of the circular polarization of the terahertz waves will allow distinction between different symmetries (left-handed or right-handed) of biological molecules, which is a very important property in medical applications. Furthermore, there is potentially a very powerful application of these waves in homeland security. Kuzmenko continues, "Terahertz waves are stopped by metals and are sensitive to plastics and organic matter. This could lead to more effective means of detecting firearms, drugs and explosives carried by individuals, and could perhaps serve as a tool to strengthen airport safety."
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