Subscribe free to our newsletters via your
. Space Industry and Business News .




CHIP TECH
Rice technique points toward 2-D devices
by Staff Writers
Houston TX (SPX) Jan 31, 2013


An atom-thick Rice Owl (scale bar equals 100 micrometers) was created to show the ability to make fine patterns in hybrid graphene/hexagonal boron nitride (hBN). In this image, the owl is hBN and the lighter material around it is graphene. The ability to pattern a conductor (graphene) and insulator (hBN) into a single layer may advance the ability to shrink electronic devices. Credit: Zheng Liu/Rice University.

Rice University scientists have taken an important step toward the creation of two-dimensional electronics with a process to make patterns in atom-thick layers that combine a conductor and an insulator.

The materials at play - graphene and hexagonal boron nitride - have been merged into sheets and built into a variety of patterns at nanoscale dimensions.

Rice introduced a technique to stitch the identically structured materials together nearly three years ago. Since then, the idea has received a lot of attention from researchers interested in the prospect of building 2-D, atomic-layer circuits, said Rice materials scientist Pulickel Ajayan. He is one of the authors of the new work that appears this week in Nature Nanotechnology. In particular, Ajayan noted that Cornell University scientists reported an advance late last year on the art of making atomic-layer heterostructures through sequential growth schemes.

This week's contribution by Rice offers manufacturers the possibility of shrinking electronic devices into even smaller packages. While Rice's technical capabilities limited features to a resolution of about 100 nanometers, the only real limits are those defined by modern lithographic techniques, according to the researchers. (A nanometer is one-billionth of a meter.)

"It should be possible to make fully functional devices with circuits 30, even 20 nanometers wide, all in two dimensions," said Rice researcher Jun Lou, a co-author of the new paper. That would make circuits on about the same scale as in current semiconductor fabrication, he said.

Graphene has been touted as a wonder material since its discovery in the last decade. Even at one atom thick, the hexagonal array of carbon atoms has proven its potential as a fascinating electronic material. But to build a working device, conductors alone will not do. Graphene-based electronics require similar, compatible 2-D materials for other components, and researchers have found hexagonal boron nitride (h-BN) works nicely as an insulator.

H-BN looks like graphene, with the same chicken-wire atomic array. The earlier work at Rice showed that merging graphene and h-BN via chemical vapor deposition (CVD) created sheets with pools of the two that afforded some control of the material's electronic properties. Ajayan said at the time that the creation offered "a great playground for materials scientists."

He has since concluded that the area of two-dimensional materials beyond graphene "has grown significantly and will play out as one of the key exciting materials in the near future."

His prediction bears fruit in the new work, in which finely detailed patterns of graphene are laced into gaps created in sheets of h-BN. Combs, bars, concentric rings and even microscopic Rice Owls were laid down through a lithographic process. The interface between elements, seen clearly in scanning transmission electron microscope images taken at Oak Ridge National Laboratories, shows a razor-sharp transition from graphene to h-BN along a subnanometer line.

"This is not a simple quilt," Lou said. "It's very precisely engineered. We can control the domain sizes and the domain shapes, both of which are necessary to make electronic devices."

The new technique also began with CVD. Lead author Zheng Liu, a Rice research scientist, and his colleagues first laid down a sheet of h-BN. Laser-cut photoresistant masks were placed over the h-BN, and exposed material was etched away with argon gas. (A focused ion beam system was later used to create even finer patterns, down to 100-nanometer resolution, without masks.) After the masks were washed away, graphene was grown via CVD in the open spaces, where it bonded edge-to-edge with the h-BN. The hybrid layer could then be picked up and placed on any substrate.

While there's much work ahead to characterize the atomic bonds where graphene and h-BN domains meet and to analyze potential defects along the boundaries, Liu's electrical measurements proved the components' qualities remain intact.

"One important thing Zheng showed is that even by doing all kinds of growth, then etching, then regrowth, the intrinsic properties of these two materials are not affected," Lou said. "Insulators stay insulators; they're not doped by the carbon. And the graphene still looks very good. That's important, because we want to be sure what we're growing is exactly what we want."

Liu said the next step is to place a third element, a semiconductor, into the 2-D fabric. "We're trying very hard to integrate this into the platform," he said. "If we can do that, we can build truly integrated in-plane devices." That would give new options to manufacturers toying with the idea of flexible electronics, he said.

"The contribution of this paper is to demonstrate the general process," Lou added. "It's robust, it's repeatable and it creates materials with very nice properties and with dimensions that are at the limit of what is possible."

Co-authors of the paper are graduate students Lulu Ma, Gang Shi, Yongji Gong, Ken Hackenberg, Sidong Lei and Jiangnan Zhang; Aydin Babakhani, an assistant professor of electrical and computer engineering; and Robert Vajtai, a faculty fellow in mechanical engineering and materials science, all at Rice; Wu Zhou, a research associate at Vanderbilt University and Wigner Fellow at Oak Ridge National Laboratory; Xuebei Yang, a former research assistant at Rice, now at Agilent Technologies; Jingjiang Yu, a scientist at Agilent Technologies; and Juan-Carlos Idrobo, a research professor of physics at Vanderbilt and a guest scientist at Oak Ridge. Lou is an associate professor of mechanical engineering and materials science. Ajayan is the Benjamin M. and Mary Greenwood Anderson Professor in Mechanical Engineering and Materials Science and of chemistry at Rice. Graphene and boron nitride lateral heterostructures for atomically thin circuitry

.


Related Links
Lou Group:
Ajayan Group:
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








CHIP TECH
NIST's 'nanotubes on a chip' may simplify optical power measurements
Washington DC (SPX) Jan 29, 2013
The National Institute of Standards and Technology (NIST) has demonstrated a novel chip-scale instrument made of carbon nanotubes that may simplify absolute measurements of laser power, especially the light signals transmitted by optical fibers in telecommunications networks. The prototype device, a miniature version of an instrument called a cryogenic radiometer, is a silicon chip topped ... read more


CHIP TECH
Bioinspired fibers change color when stretched

Stanford Researchers Break Million-core Supercomputer Barrier

Scientists trick iron-eating bacteria into breathing electrons instead

Demagnetization by rapid spin transport

CHIP TECH
Raytheon offers Global Aircrew Strategic Network Terminal Soultion

US Army Upgrades Manpack Radios For MUOS Network

Insights from the SIA DoD Commercial SATCOM Users' Workshop

Boeing to Upgrade Combat Survivor Evader Locator Radios, Base Stations

CHIP TECH
Spacecom And Spacex Announce Agreement For Amos-6 Satellite Launch

S. Korea joins global space club with satellite launch

Russia Set for Year's First Baikonur Space Launch Feb. 5

First Ariane 5 For 2013 Ready For Loading

CHIP TECH
Fleet Managers Able to Track Drivers' Hours with Vehicle Tracking Systems

Galileo's search and rescue system passes first space test

AFRL Selects Surrey Satellite US to Evaluate Small Satellite Approach to GPS

Lockheed Martin Awarded Contract to Sustain Ground Station for Global Positioning System

CHIP TECH
H-1 Helicopter Mission Computer Contract Awarded

Japan has concerns on F-35 sales

Philippines to buy 12 S. Korean fighter jets

ANA keeps forecast as nine-month net profit surges

CHIP TECH
A new material for environmentally friendlier electronics

Novel materials: smart and magnetic

Rice technique points toward 2-D devices

New Options for transparent contact electrodes

CHIP TECH
Remote Sensing Solution Takes Wing Aboard Ultralight Aircraft

New tools enable high-res observations from anywhere with internet access

Internet age navigation drives economies: studies

RapidEye Commits to Data Continuity; Discusses System Health and Life Span

CHIP TECH
Hospital visits rise during Beijing's choking smog

Beijing issues warnings as smog continues

Beijing issues warnings as smog continues

Tallinn first EU capital to give residents free ticket to ride




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