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Development of Micro-Magnetron for Terahertz Imaging Applications

Description du projet

Quand l’électronique et la photonique se rencontrent

Il existe une région qui sépare l’électronique de la photonique; il s’agit de la région térahertz (THz), soit nominalement entre 0,1 et 10 THz. Le rapprochement entre l’électronique et la photonique est inévitable, et des dispositifs électroniques compacts sont indispensables pour en exploiter les avantages potentiels. Le projet Micro-magnetron, financé par l’UE, placera le tube magnétron sur le front des THz. Le micro-magnétron THz devrait servir les applications RADAR pour la sécurité nationale et les procédures d’évacuation en cas de tremblement de terre, ainsi que les recherches sur les matériaux. Cette solution ouvrira également la voie à une alternative efficace à l’imagerie médicale, notamment pour le diagnostic du cancer. Elle pourra par ailleurs servir à la détection d’armes dissimulées dans des lieux très fréquentés.

Objectif

Famous scientist Freeman Dyson states that most of the scientific developments are tools and instruments driven. For instance, X-rays, as a scientific tool was discovered by Roentgen using Lenard's vacuum tube. Apart from the significant scientific breakthrough and discoveries, the technological advancement of tools is needed to serve the growing demands in communication, healthcare, security and manufacturing industries. Medical imaging applications from cancerous cells diagnostic to teeth caries, space applications from the universe exploration to upper atmosphere studies, homeland security applications to identify persons with concealed arms, and industrial applications such as non-destructive testing can be made possible with non-ionising, high bandwidth THz frequencies. Despite these advantages, A THZ gap exists between electronics and photonics. Compact electron devices are needed to exploit these potential advantages. With the collisionless propagation nature of an electron beam, the micro vacuum electron devices generate higher power per unit volume than solid-state devices and Lasers. From the victory of World War II to present daily services in our kitchen, magnetron tube has given unbeatable performance at many scientific and industrial fronts.
With these motivations, we put this veteran magnetron tube on THz fronts in the current proposal. The THz micro-magnetron is proposed to serve medical imaging and RADAR applications for homeland security, earthquakes evacuation, material investigation.
The EM wave power generation with a high degree of compactness will be turned into an innovative solution as listed: 1. With a non-ionising nature, the THz micro-magnetron based system is an economical alternative for medical imaging, including various cancer diagnostic 2. A portable standoff device for the detection of concealed arms at crowded places. 3. Highly suitable for restricted payload environments such as space-borne RADAR and UAV-enabled 3D imaging RADAR.

Coordinateur

UPPSALA UNIVERSITET
Contribution nette de l'UE
€ 206 887,68
Adresse
VON KRAEMERS ALLE 4
751 05 Uppsala
Suède

Voir sur la carte

Région
Östra Sverige Östra Mellansverige Uppsala län
Type d’activité
Higher or Secondary Education Establishments
Liens
Coût total
Aucune donnée