. 24/7 Space News .




CHIP TECH
Dreidel-like dislocations lead to remarkable properties
by Staff Writers
Houston TX (SPX) Dec 17, 2012


Two-dimensional molybdenum/sulfur is a hexagonal lattice when seen from above, but when viewed edge on, as it is here, its three-layer form is apparent. When two sheets of the material meet, three-dimensional dislocations appear at the grain boundaries. When the sheets meet at a 60-degree angle, those boundaries are metallic, and conductive. (Credit: Yakobson Group/Rice University)

A new material structure predicted at Rice University offers the tantalizing possibility of a signal path smaller than the nanowires for advanced electronics now under development at Rice and elsewhere.

Theoretical physicist Boris Yakobson and postdoctoral fellow Xiaolong Zou were investigating the atomic-scale properties of two-dimensional materials when they found to their surprise that a particular formation, a grain boundary in metal disulfides, creates a metallic - and therefore conducting - path only a fraction of a nanometer wide.

That's basically the width of a chain of atoms, Yakobson said.

The discovery reported this week in the American Chemical Society journal Nano Letters sprang from an investigation of how atoms energetically relate to each other and form topological defects in two-dimensional semiconductors. In recent work, Yakobson's group has analyzed defects in graphene, the single-atom sheet of carbon that is under intense scrutiny by labs around the world.

But flat graphene has no band gap; electrons flow straight through. "There is a lot of effort to open a gap in graphene, but this is not easy," said Yakobson, Rice's Karl F. Hasselmann Professor of Mechanical Engineering and Materials Science and professor of chemistry. "People are trying different ways, but none of them are straightforward. This motivated the search for other two-dimensional materials."

Molybdenum/sulfur (or tungsten/sulfur) materials are becoming interesting to scientists because they have a useful natural band gap, about two electron volts in the case of molybdenum/sulfur. And while they are technically two-dimensional materials, the energies at play force their atoms into a staggered arrangement.

"It's more complex than graphene," Yakobson said. "There's a layer of metal in the middle, with sulfur atoms above and below, but they're fully connected by covalent bonds in a honeycomb lattice, so it's one compound."

Chemical vapor deposition is typically used to grow such material; under high temperatures the atoms (like carbon for graphene) fall into line and form sheets. But when two such blooms appear and they meet, they don't necessarily line up. Where they merge, they form what are called "grain boundaries," akin to grains in wood that join at awkward angles. (Think of a branch meeting a tree trunk.) Those grain boundaries affect the electrical properties of the merged material.

Zou calculated those properties based on the atomic energies of the elements. In looking at the elemental bonds, the researchers found the expected "dislocations" where the energies force atoms out of their regular patterns. "Where the sheets meet, they cannot have an ideal lattice structure, so they have these stitches, the dislocations. Each grain boundary is just a series of these dislocations," Yakobson said.

It was only coincidence that the dislocations took on dreidel-like shapes for a paper published during Hanukkah, he said.

"We found order in this complexity and chaos, the exact structures that are possible at the grain boundaries and the dislocations types," he said.

The growing molybdenum/sulfur sheets can meet at any angle, and though the sheets are semiconducting, the boundaries between them generally stop electrical signals in their tracks. But at one particular angle - 60 degrees - the periodic dislocations are close enough to pass signals on from one to the next along the length of the boundary. "Basically, they're metallic in this direction," Yakobson said.

"So in the middle of these domains of semiconducting material, you have this boundary line that carries current in one direction, like a wire. And it's only a few angstroms wide," he said.

"Metal disulfides may be promising for future electronic devices based on materials with reduced dimensions," Zou said. "It is important to understand the effects of topological defects on the electronic properties as we push toward post-silicon devices."

Yuanyue Liu, a graduate student in Yakobson's group, is a co-author of the paper. A U.S. Army Research Office Multidisciplinary University Research Initiative grant and the National Science Foundation (NSF) supported the research. Computations were performed at the NSF-funded Data Analysis and Visualization Cyberinfrastructure at Rice. Read the abstract here.

.


Related Links
Rice University
Yakobson Research 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




Memory Foam Mattress Review

Newsletters :: SpaceDaily Express :: SpaceWar Express :: TerraDaily Express :: Energy Daily
XML Feeds :: Space News :: Earth News :: War News :: Solar Energy News

Get Our Free Newsletters
Space - Defense - Environment - Energy - Solar - Nuclear

...




Year In Space 2013 Wall Calendar



CHIP TECH
Berkeley Lab Breaks Ground on Flexible Design Building to Test Low-energy Systems and Components
Berkeley CA (SPX) Dec 12, 2012
Today marks the start of a new era for research on energy-efficient buildings at Lawrence Berkeley National Laboratory (Berkeley Lab). Lab leadership and distinguished guests from the U.S. Department of Energy, the state of California, utilities and the building industry broke ground on the start of construction for the Facility for Low-Energy eXperiments on Buildings (FLEXLAB). "Our new F ... read more


CHIP TECH
Apollo's Lunar Dust Data Being Restored

NASA Gravity Probes Prepare to Hit the Moon

To the moon and back for less than 2 billion dollars

NASA's GRAIL Creates Most Accurate Moon Gravity Map

CHIP TECH
Charitum Montes: a cratered winter wonderland

Opportunity Continues Rock Studies

Opportunity Checking Out Some Rocks At Matijevic Hill

Curiosity Rover Nearing Yellowknife Bay

CHIP TECH
What happens to plant growth when you remove gravity?

To reach final frontier, NASA can't go it alone: analysts

NASA Awards Commercial Crew Certification Contracts

China patent office becomes world's largest: WIPO

CHIP TECH
Mr Xi in Space

China plans manned space launch in 2013: state media

China to launch manned spacecraft

Tiangong 1 Parked And Waiting As Shenzhou 10 Mission Prep Continues

CHIP TECH
Medical Ops, Fan Checks for Space Crew; New Trio Checks Soyuz

Khrunichev Completes Nauka Space Station Module

New Crew of ISS to Perform Two Spacewalks

Space Station to reposition for science

CHIP TECH
ISRO planning 10 space missions in 2013

Russia works to fix satellite's off-target orbit

ULA Launch Monopoly to End

SPACEX Awarded Two EELV Class Missions From The USAF

CHIP TECH
Astronomers discover and 'weigh' infant solar system

Search for Life Suggests Solar Systems More Habitable than Ours

Do missing Jupiters mean massive comet belts?

Brown Dwarfs May Grow Rocky Planets

CHIP TECH
Samsung is top 2012 phone brand, ousting Nokia

Instagram yields to user outrage over policy change

Rice uses light to remotely trigger biochemical reactions

Apple losses bid for US ban on Samsung smartphones




The content herein, unless otherwise known to be public domain, are Copyright 1995-2012 - 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