Subscribe free to our newsletters via your
. 24/7 Space News .




CHIP TECH
Ultra-fast electrical circuits using light-generated tunneling currents
by Staff Writers
Singapore (SPX) Apr 19, 2014


A focused electron beam (in yellow) was used to characterise the structures and to probe the optical properties of two plasmonic resonators bridged by a layer of molecules with a length of 0.5 nm. Image courtesy Tan Shu Fen, National University of Singapore.

Assistant Professor Christian A. Nijhuis of the Department of Chemistry at the National University of Singapore's (NUS) Faculty of Science, in collaboration with researchers from the Agency for Science, Technology and Research (A*STAR), namely Dr Bai Ping of the Institute of High Performance Computing and Dr Michel Bosman of the Institute of Materials Research and Engineering has successfully designed and fabricated electrical circuits that can operate at hundreds of terahertz frequencies, which is tens of thousands times faster than today's state-of-the-art microprocessors.

This novel invention uses a new physical process called 'quantum plasmonic tunnelling'. By changing the molecules in the molecular electronic device, the frequency of the circuits can be altered in hundreds of terahertz regime.

The new circuits can potentially be used to construct ultra-fast computers or single molecule detectors in the future, and open up new possibilities in nano-electronic devices. The study is funded by the National Research Foundation (NRF) and A*STAR and results of the research were first published in prestigious scientific journal Science on 28 March 2014.

The quest to be super-small and super-fast
Light is used as an information carrier and transmitted in optical fibre cables. Photonic elements are large but they operate at extremely high frequencies of 100 terahertz - about 10,000 times faster than the desktop computer. But current state-of-the-art nano-electronic devices operate at length scales that are much smaller, making it very difficult to combine the ultra-fast properties of photonic elements with nano-scale electronics.

Scientists have long known that light can interact with certain metals and can be captured in the form of plasmons, which are collective, ultra-fast oscillations of electrons that can be manipulated at the nano-scale. The so-called quantum plasmon modes have been theoretically predicted to occur at atomic length scales. However, current state-of-the-art fabrication techniques can only reach length scales that are about five nanometre larger, therefore quantum-plasmon effects have been difficult to investigate.

In this landmark study, the research team demonstrated that quantum-plasmonics is possible at length scales that are useful for real applications. Researchers successfully fabricated an element of a molecular electronic circuit using two plasmonic resonators, which are structures that can capture light in the form of plasmons, bridged by a layer of molecules that is exactly one molecule thick. The layer of molecules switches on the quantum plasmonic tunneling effects, enabling the circuits to operate at terahertz frequencies.

Dr Bosman used an advanced electron microscopy technique to visualise and measure the opto-electronic properties of these structures with nanometer resolution. The measurements revealed the existence of the quantum plasmon mode and that its speed could be controlled by varying the molecular properties of the devices.

By performing quantum-corrected simulations, Dr Bai confirmed that the quantum plasmonic properties could be controlled in the molecular electronic devices at frequencies 10,000 times faster than current processors.

Explaining the significance of the findings, Asst Prof Nijhuis said, "We are very excited by the new findings. Our team is the first to observe the quantum plasmonic tunneling effects directly. This is also the first time that a research team has demonstrated theoretically and experimentally that very fast-switching at optical frequencies are indeed possible in molecular electronic devices."

The results open up possible new design routes for plasmonic-electronics that combines nano-electronics with the fast operating speed of optics.

To further their research, Asst Prof Nijhuis and his team will look into resolving the challenges that are presented in the course of their work, such as the integration of these devices into real electronic circuits. They are also following up with new ideas that are developed from these results.

.


Related Links
National University of Singapore
Computer Chip Architecture, Technology and Manufacture
Nano Technology News From SpaceMart.com






Comment on this article via your Facebook, Yahoo, AOL, Hotmail login.

Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle




Memory Foam Mattress Review
Newsletters :: SpaceDaily :: SpaceWar :: TerraDaily :: Energy Daily
XML Feeds :: Space News :: Earth News :: War News :: Solar Energy News





CHIP TECH
Researchers bolster development of programmable quantum computers
Chicago IL (SPX) Apr 17, 2014
University of Chicago researchers and their colleagues at University College London have performed a proof-of-concept experiment that will aid the future development of programmable quantum computers. Many complex problems are difficult and slow to solve using conventional computers, and over the last several years, research has grown steadily toward developing quantum computation. In part ... read more


CHIP TECH
Russian Federal Space Agency is elaborating Moon exploration program

Science, Discovery Channels to broadcast private race to the moon

Take the Plunge: LADEE Impact Challenge

Land a Lunar Laser Reflector Now!

CHIP TECH
Mars' halcyon times may have been fleeting

Gusev Crater once held a lake after all

Mars Exploration in a Deep Mine

Images From NASA Mars Rover Include Bright Spots

CHIP TECH
Veggie Will Expand Fresh Food Production on ISS

Reporters See NASA's Latest High Tech Exploration Tool Before Testing

Recycling astronaut urine for energy and drinking water

Orion Avionics System Ready for First Test Flight

CHIP TECH
China launches experimental satellite

Tiangong's New Mission

"Space Odyssey": China's aspiration in future space exploration

China to launch first "space shuttle bus" this year

CHIP TECH
'Cherry tree from space' mystery baffles Japan

Extra-terrestrial Tweet-up links Tokyo with space

Russian cargo ship docks to space station

Progress Departs, New Cargo Ships Awaiting Launch

CHIP TECH
NASA Ames Launches Nanosatellites, Science Experiments on SpaceX Rocket

On-board camera provides a unique perspective on Arianespace Flight VS07

The DZZ-HR satellite is fueled for Arianespace's upcoming Vega launch

EUTELSAT 3B Mission Status Update

CHIP TECH
Chance meeting creates celestial diamond ring

Faraway Moon or Faint Star? Possible Exomoon Found

The Importance of Planetary Plumes

Orbital physics is child's play with 'Super Planet Crash'

CHIP TECH
New Self-healing Plastics Developed

Deep sea rocks may be future source for rare earth metals

New technique takes cues from astronomy and ophthalmology to sharpen microscope images

Cork trees offer greener source of polyester




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. Privacy Statement All images and articles appearing on Space Media Network have been edited or digitally altered in some way. Any requests to remove copyright material will be acted upon in a timely and appropriate manner. Any attempt to extort money from Space Media Network will be ignored and reported to Australian Law Enforcement Agencies as a potential case of financial fraud involving the use of a telephonic carriage device or postal service.