- Environmental Sciences - May 24
Intel invests in UK institute to create Global Centre for Research in Sustainable Connected Cities - Literature - May 24
Queen Victoria's personal journals put online - Agronomy - May 24
Diagnostic labs analyze anything from bugs to toenails - Medicine - May 24
UCLA launches first face transplantation program in western U.S - Environmental Sciences - May 24
Road2Science: Researching Stronger, Safer, Smarter Infrastructure - Physics - May 24
Get ready for the transit of Venus! - Medicine - May 24
Hormone Plays Surprise Role in Fighting Skin Infections - Business - May 24
Engineering a better society - Law - May 24
Latest UT/Texas Tribune Poll: Tax Pledge Issue Reveals Conservative Divide - Medicine - May 24
Device may inject a variety of drugs without using needles - Medicine - May 24
Stopping drug- induced liver injury - Medicine - May 24
Penn Offers Benefits- tax Offset to Same- sex Couples - Environmental Sciences - May 24
Lighting control system at U-M saves energy and costs - Life Sciences - May 24
UC San Diego Receives $7 Million from DOD for Innovative Neural Research - Social Sciences - May 24
Better response plans needed for children exposed to domestic violence - Physics - May 24
Exotic particles, chilled and trapped, form giant matter wave
Chemistry
Physics
Computer Science
Environmental Sciences
Earth Sciences
Life Sciences
Medicine
Business
Literature
History
Psychology
Social Sciences
» » more
The impending revolution of low-power quantum computers

© _pop_eye
Electronics could be 100 times less energy-hungry thanks to a quantum phenomenon known as the tunnel effect - by 2017 in consumer electronics
By 2017, quantum physics will help reduce the energy consumption of our computers and cellular phones by up to a factor of 100. For research and industry, the power consumption of transistors is a key issue. The next revolution will likely come from tunnel-FET, a technology that takes advantage of a phenomenon referred to as “quantum tunneling.” At the EPFL, but also in the laboratories of IBM Zurich and the CEA-Leti in France, research is well underway.
Transistors that exploit a quantum quirk
Today’s computers have no less than a billion transistors in the CPU alone. These small switches that turn on and off provide the famous binary instructions, the 0s and 1s that let us send emails, watch videos, move the mouse pointer… and much more. The technology used in today’s transistors is called “field effect;” whereby voltage induces an electron channel that activates the transistor. But field effect technology is approaching its limits, particularly in terms of power consumption.
Tunnel-FET technology is based on a fundamentally different principle. In the transistor, two chambers are separated by an energy barrier. In the first, a horde of electrons awaits while the transistor is deactivated. When voltage is applied, they cross the energy barrier and move into the second chamber, activating the transistor in so doing.
In the past, the tunnel effect was known to disrupt the operation of transistors. According to quantum theory, some electrons cross the barrier, even if they apparently don’t have enough energy to do so. By reducing the width of this barrier, it becomes possible to amplify and take advantage of the quantum effect – the energy needed for the electrons to cross the barrier is drastically reduced, as is power consumption in standby mode.
Mass production is imminent
“By replacing the principle of the conventional field effect transistor by the tunnel effect, one can reduce the voltage of transistors from 1 volt to 0.2 volts,” explains Ionescu. In practical terms, this decrease in electrical tension will reduce power consumption by up to a factor of 100. The new generation microchips will combine conventional and tunnel-FET technology. “The current prototypes by IBM and the CEA-Leti have been developed in a pre-industrial setting. We can reasonably expect to see mass production by around 2017.”
An essential technology for a major European project
For Ionescu, who heads the Guardian Angels project (a project vetted for a billion Euro grant from the EU), tunnel-FET technology is without a doubt the next big technological leap in the field of microprocessors. “In the Guardian Angels project, one of our objectives is to find solutions to reduce the power consumption of processors. Tunnel-FET is the next revolution that will help us achieve this goal.” The aim: design ultra-miniaturized, zero-power electronic personal assistants. Tunnel-FET technology is one of the first major stages in the project’s roadmap. IBM and the CEA-Leti are also partners in the project.
Last job offers
- Civil Engineering - 24.5
Wissensch. Assistent/in MINERGIE® Agentur Bau (80–100 %) - Agronomy - 22.5
Wissenschaftliche Mitarbeiter/in Koordination Agrar-Umweltindikatoren - Social Sciences - 21.5
wissenschaftliche Mitarbeiterin/ wissenschaftlicher Mitarbeiter - Electroengineering - 21.5
Sektionsleiter/in - Electroengineering - 21.5
Elektroingenieur/in FH - Life Sciences - 17.5
Hochschulabsolventen (m/w) Fachrichtungen Biologie, Mikrobiologie, Bio-Informatik... - Medicine - 25.5
Chair of Paediatrics (Associate Professor-Professor) - Earth Sciences - 24.5
2012-05-24 at the Department of Geological Sciences. Reference number SU 612-1718-12. Deadline for applications:... - Pedagogy - 24.5
Professur für Erziehungswissenschaft (Allgemeine Pädagogik) - Pedagogy - 24.5
Schulpädagogik (mit dem Schwerpunkten Schulforschung und Allgemeine Didaktik) - Medicine - 24.5
Chair in Bacteriology - YMS360A - Business - 24.5
Associate Professor in Operations Management - Business - 23.5
Full, Assoc, or Asst. Professor in Marketing - Life Sciences - 23.5
Open Rank Professor - Pathology & Lab Med








» Share this page: