Subscribe free to our newsletters via your
. Military Space News .




NANO TECH
New hologram technology created with tiny nanoantennas
by Emil Venere for Purdue News
West Lafayette IN (SPX) Nov 19, 2013


Laser light shines through the metasurface from below, creating a hologram 10 microns above the structure. (Xingjie Ni, Birck Nanotechnology Center). Credit: (Xingjie Ni, Birck Nanotechnology Center).

Researchers have created tiny holograms using a "metasurface" capable of the ultra-efficient control of light, representing a potential new technology for advanced sensors, high-resolution displays and information processing.

The metasurface, thousands of V-shaped nanoantennas formed into an ultrathin gold foil, could make possible "planar photonics" devices and optical switches small enough to be integrated into computer chips for information processing, sensing and telecommunications, said Alexander Kildishev, associate research professor of electrical and computer engineering at Purdue University.

Laser light shines through the nanoantennas, creating the hologram 10 microns above the metasurface. To demonstrate the technology, researchers created a hologram of the word PURDUE smaller than 100 microns wide, or roughly the width of a human hair.

"If we can shape characters, we can shape different types of light beams for sensing or recording, or for example pixels for 3-D displays. Another potential application is the transmission and processing of data inside chips for information technology," Kildishev said. "The smallest features -- the strokes of the letters -- displayed in our experiment are only 1 micron wide. This is a quite remarkable spatial resolution."

Findings are detailed in a research paper appearing on Friday (Nov. 15) in the journal Nature Communications.

Metasurfaces could make it possible to use single photons -- the particles that make up light -- for switching and routing in future computers. While using photons would dramatically speed up computers and telecommunications, conventional photonic devices cannot be miniaturized because the wavelength of light is too large to fit in tiny components needed for integrated circuits.

Nanostructured metamaterials, however, are making it possible to reduce the wavelength of light, allowing the creation of new types of nanophotonic devices, said Vladimir M. Shalaev, scientific director of nanophotonics at Purdue's Birck Nanotechnology Center and a distinguished professor of electrical and computer engineering.

"The most important thing is that we can do this with a very thin layer, only 30 nanometers, and this is unprecedented," Shalaev said. "This means you can start to embed it in electronics, to marry it with electronics."

The layer is about 1/23rd the width of the wavelength of light used to create the holograms.

The Nature Communications article was co-authored by former Purdue doctoral student Xingjie Ni, who is now a postdoctoral researcher at the University of California, Berkeley; Kildishev; and Shalaev.

Under development for about 15 years, metamaterials owe their unusual potential to precision design on the scale of nanometers. Optical nanophotonic circuits might harness clouds of electrons called "surface plasmons" to manipulate and control the routing of light in devices too tiny for conventional lasers.

The researchers have shown how to control the intensity and phase - or timing - of laser light as it passes through the nanoantennas. Each antenna has its own "phase delay" -- how much light is slowed as it passes through the structure. Controlling the intensity and phase is essential for creating working devices and can be achieved by altering the V-shaped antennas.

Article; Metasurface holograms for visible light; Xingjie Ni, Alexander V. Kildishev and Vladimir M. Shalaev; School of Electrical and Computer Engineering and Birck Nanotechnology Center, Purdue University: Holography, a revolutionary 3D imaging technique, has been developed for storing and recovering the amplitude and phase of light scattered by objects. Later, single-beam computer-generated phase holography was proposed for restoring the wavefront from a given incidence. However, because the phase modulation depends on the light propagation inside the material, the thickness of phase holograms usually remains comparable to the wavelength. Here we experimentally demonstrate ultra-thin metasurface holograms that operate in the visible range whose thickness is only 30 nm (approximately 1/23 of the operational wavelength). To our knowledge, this is the thinnest hologram that can provide both amplitude and phase modulation in the visible wavelength range, which generates high-resolution low-noise images. Using this technique, not only the phase, but potentially the amplitude of the incident wave can be effciently controlled-expanding the route to new applications of ultra-thin and surface-con?ned photonic devices.

.


Related Links
Birck Nanotechnology Center
Nano Technology News From SpaceMart.com
Computer Chip Architecture, Technology and Manufacture






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








NANO TECH
Structure of bacterial nanowire protein hints at secrets of conduction
Richland WA (SPX) Nov 18, 2013
Tiny electrical wires protrude from some bacteria and contribute to rock and dirt formation. Researchers studying the protein that makes up one such wire have determined the protein's structure. The finding is important to such diverse fields as producing energy, recycling Earth's carbon and miniaturizing computers. "This is the first atomic resolution structure of this protein from an ele ... read more


NANO TECH
US has time to boost bid for Turkey missile system: FM

US to keep Patriot missiles in Turkey for another year

Unprecedented Dual Intercept Success for MEADS at White Sands Missile Range

Patriot delivers another flawless performance in Japan test firings

NANO TECH
Lockheed Martin Conducts Second Successful LRASM Flight Test

Turkey hopes to finalise China missile purchase in six months

Iran starts producing new missile system

Japan military drills missiles on Pacific gateway

NANO TECH
Protest against US drone strikes in Pakistan postponed

Iran unveils attack drone 'with 2,000 km range'

Opponents demand end to US drone strikes, secrecy

Big drone plan in the United States

NANO TECH
Manpack Radios in Arctic Connect with MUOS Satellites Orbiting Equator

Self-correcting crystal may unleash the next generation of advanced communications

Northrop Grumman Receives Contract to Sustain Joint STARS Fleet

Raytheon expands international footprint of electronic warfare capability

NANO TECH
US firm claims first 3D-printed metal gun

Chemical arms treaty meets love-gone-wrong in US high court

Northrop Grumman Demonstrates Micro-Gyro Prototype for DARPA Program

US Army, Raytheon complete AI3 live-fire demonstration

NANO TECH
Fear of creditors keeps Argentine forces away from regional maneuvers

After scuttling Iran deal, France could clinch arms deals

Russian ministers talk arms sales in landmark Egypt visit

Raytheon to expand Mississippi radar factory, add more than 150 new high-skill jobs

NANO TECH
Beijing's meagre typhoon aid is diplomatic misstep: experts

Taiwan in last-ditch bid to rescue Gambia ties

NATO puts its faith in new high-tech HQ

New Zealand fine-tunes defense requirements

NANO TECH
New hologram technology created with tiny nanoantennas

Nano magnets arise at 2-D boundaries

Structure of bacterial nanowire protein hints at secrets of conduction

All aboard the nanotrain network




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA Portal 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