Showing posts with label TeraVII Ltd.. Show all posts
Showing posts with label TeraVII Ltd.. Show all posts

Monday, December 5, 2016

Quantum dots offer new platform for fingertip terahertz devices





Credit: ITMO University
http://phys.org/news/2016-12-quantum-dots-platform-fingertip-terahertz.html
Scientists from Russia and the U.K. have developed an antenna that can aid in reducing sources of terahertz radiation down to the size of a fingertip. The antenna is a "sandwich" of semiconductor layers combined with quantum dots. The scientists demonstrated that such antennas provide a foundation for a new universal system capable of both transmitting and receiving terahertz radiation. Compact devices, operating at terahertz range, have applications in medicine and biology for tumor visualization and in the aerospace industry for high-speed communication systems. The study was published in Laser & Photonics Reviews.

The  lies between infrared and microwave spectra. Terahertz radiation can penetrate living tissues, but unlike X-rays, is not ionizing and poses no health hazard. Therefore, medical practitioners could benefit immensely from compact  scanners that can obtain pictures of tissues in living organisms.
Researchers from Aston University and ITMO University used  to develop an antenna that can significantly reduce the size of terahertz sources. The work was supported by scientists from the University of Strathclyde and University of Sheffield, as well as TeraVil Ltd company and Center for Physical Sciences and Technology in Vilnius.
"It was a technological challenge," says the study's academic supervisor Edik Rafailov, professor at Aston Institute of Photonic Technologies and leading research associate at ITMO University. "We demonstrated that quantum dots are a good alternative for conventional semiconductors. This new technology gives us an opportunity to generate terahertz at room temperature. And potentially make terahertz devices compact and cheap."





Credit: ITMO University
Today, terahertz generation relies on sources that involve conversion of infrared laser beam into terahertz. The transformation is carried out with intricate systems of waveguides, semiconductor crystals or diodes. The search for alternative ways of generating and detecting  is still underway, but such devices remain bulky, expensive and operate only at low temperatures.
The new antennas make it possible not only to use terahertz sources at room temperature, but also to miniaturize them. "We are able to create very compact sources of  the size of a fingertip," comments leading author of the paper Andrei Gorodetsky, researcher at the Department of Photonics and Optical Information Technology of ITMO University and research associate at Aston Institute of Photonic Technologies. "With the new antennas, we managed to remove the limitation associated with the narrow light spectrum that is used by current converts. This gives us an opportunity to combine the antennas with compact infrared lasers. Additionally, the antennas are 20 times more resistant to damage than typical semiconductor devices. Both factors allow us to incorporate the antenna into the laser instead of setting it apart."






Credit: ITMO University

The researchers suggest that their findings can be used in high-speed communication systems and also in compact terahertz scanners, which would give dynamic imaging of deep skin layers, embryo development, brain processes, and scanning of internal organs or tumors. Terahertz radiation is not harmful, as it does not scatter too much in biological tissues. As a result, terahertz systems are more informative, sensitive and fast compared to their substitutes from other parts of electromagnetic spectrum.



Credit: ITMO University


Credit: ITMO University

Saturday, April 18, 2015

TeraVII Ltd. Participation in Projects

http://www.teravil.lt/projects.php

PHOtonic tools for Quantitative imaging in tissUeS

Marie Curie Initial Training Network, Seventh Framework Programme Innovative PhD Doctoral Training Programme on Photonics Tools
The PHOtonic tools for Quantitative imaging in Cells and tissUeS (PHOQUS) project will seed a revolution in the development and application of novel imaging modalities and multimodalities to enable the quantitative investigation of biological processes at multiple size regimes from the molecular and cellular to the tissue and organ level scale, by training graduates in life or medical sciences, or physics or engineering for the first time to integrate seamlessly photonics, nanotechnology, advanced spectroscopy and novel spectral regions with the latest advances in live imaging and diagnostics. The photonics focus on new tools and sources will open up opportunities to investigate the mechanisms and nuclear dynamics that control spindle formation and chromosome separation during mitosis as well as cell migration dynamics and mechanics during early embryonic development and the development of cancer in the gut. PHOQUS will utilise the world-class extensive expertise in Life Sciences, pioneering surgical / image interventional technologies and nanomedicine within the Medical School and advanced Photonics at the University of Dundee to deliver an Innovative interface science Doctoral Training Program. This 3-year PhD programme is a new, highly innovative scheme to train postgraduate students as truly interdisciplinary scientists at the interface between physics / photonics and live imaging methodologies in life sciences and medicine. PHOQUS will benefit from the close involvement of 10 Associate Industrial and 9 Associate Academic Partners distributed over 7 European countries. The Associate Partners will provide academic and commercial expertise as well as training for key aspects of the project.
For more information please visit PHOQUS project webpage

TERAHERTZ IMAGING SYSTEM MAINTAINED BY CHIRPED OPTICAL PULSES (TERAOPT)

Objective of the project is:
To develop a fast, compact and relatively inexpensive terahertz range imaging system, applying optical mixing of chirped pulses from fibre laser for the generation of narrow bandwidth terahertz pulses in an ultrafast semiconductor switch. 
TERAOPT project is partly funded by "Mokslo Inovacijų ir Technologijų Agentūra" (MITA).

Novel Compact Terahertz Sources Based on Dual Wavelength Lasers and Photomixers

Developing low cost technologies for the fabrication of compact room temperature submillimeter terahertz (THz) sources operating at 0.3 – 3 THz and beyond. 
• Novel, efficient and low?cost THz transceiver devices for “next generation” security & medical imaging and spectroscopy devices 
• Ultra compact, room temperature devices operating over a tunable THz frequency range 
• Coherent THz radiation generated in novel semiconductor materials driven by highpower laser sources and efficient “quantumdot” lasers 
• Non invasive, localised diagnosis and investigation of skin, gastric, cervical and colon cancers
Funded by

Marie Curie Industry-Academia Partnerships and Pathways