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




NANO TECH
A graphene nanotube hybrid
by Staff Writers
Houston TX (SPX) Nov 29, 2012


A plateau of nanotubes grown seamlessly from graphene at Rice University. The hybrid material may be the most efficient ever made for supercapacitors. Credit: Tour Group/Rice University.

A seamless graphene/nanotube hybrid created at Rice University may be the best electrode interface material possible for many energy storage and electronics applications. Led by Rice chemist James Tour, researchers have successfully grown forests of carbon nanotubes that rise quickly from sheets of graphene to astounding lengths of up to 120 microns, according to a paper published by Nature Communications. A house on an average plot with the same aspect ratio would rise into space.

That translates into a massive amount of surface area, the key factor in making things like energy-storing supercapacitors.

The Rice hybrid combines two-dimensional graphene, which is a sheet of carbon one atom thick, and nanotubes into a seamless three-dimensional structure. The bonds between them are covalent, which means adjacent carbon atoms share electrons in a highly stable configuration. The nanotubes aren't merely sitting on the graphene sheet; they become a part of it.

"Many people have tried to attach nanotubes to a metal electrode and it's never gone very well because they get a little electronic barrier right at the interface," Tour said.

"By growing graphene on metal (in this case copper) and then growing nanotubes from the graphene, the electrical contact between the nanotubes and the metal electrode is ohmic. That means electrons see no difference, because it's all one seamless material.

"This gives us, effectively, a very high surface area of more than 2,000 square meters per gram of material. It's a huge number," said Tour, Rice's T.T. and W.F. Chao Chair in Chemistry as well as a professor of mechanical engineering and materials science and of computer science and a co-author with former postdoctoral researcher and lead author Yu Zhu, now an assistant professor at the University of Akron.?

Tour said proof of the material's hybrid nature lies in the seven-membered rings at the transition from graphene to nanotube, a structure predicted by theory for such a material and now confirmed through electron microscope images with subnanometer resolution.

Carbon has no peer as a conductive material in such a thin and robust form, especially in the form of graphene or certain types of nanotubes. Combining the two appears to offer great potential for electronic components like fast supercapacitors that, because of the massive surface area, may hold a great deal of energy in a tiny package.

Rice chemist Robert Hauge and his team made the first steps toward such a hybrid over the past decade. Hauge, a distinguished faculty fellow in chemistry at Rice and co-author of the new work, discovered a way to make densely packed carpets of nanotubes on a carbon substrate by suspending catalyst-laced flakes in a furnace.

When heated, the catalyst built carbon nanotubes like skyscrapers, starting at the substrate and working their way up. In the process, they lifted the aluminum oxide buffer into the air. The whole thing looked like a kite with many strings and was dubbed an odako, like the giant Japanese kites.

In the new work, the team grew a specialized odako that retained the iron catalyst and aluminum oxide buffer but put them on top of a layer of graphene grown separately on a copper substrate.

The copper stayed to serve as an excellent current collector for the three-dimensional hybrids that were grown within minutes to controllable lengths of up to 120 microns.

Electron microscope images showed the one-, two- and three-walled nanotubes firmly embedded in the graphene, and electrical testing showed no resistance to the flow of current at the junction.

"The performance we see in this study is as good as the best carbon-based supercapacitors that have ever been made," Tour said. "We're not really a supercapacitor lab, and still we were able to match the performance because of the quality of the electrode. It's really remarkable, and it all harkens back to that unique interface."

Co-authors of the Nature Communications paper are Rice graduate students Gedeng Ruan, Lei Li, Zheng Yan, Zhiwei Peng and Abdul-Rahman Raji; visiting student Chenguang Zhang of Rice and Tianjin University; Gilberto Casillas, a graduate student at the University of Texas at San Antonio; Rice alumnus Zhengzong Sun, now a postdoctoral researcher at the University of California, Berkeley; and Carter Kittrell, a lab manager at Rice's Richard E. Smalley Institute for Nanoscale Science and Technology.

.


Related Links
Richard E. Smalley Institute for Nanoscale Science and Technology
Rice University
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
Penn Researchers Make Flexible, Low-voltage Circuits Using Nanocrystals
Philadelphia PA (SPX) Nov 27, 2012
Electronic circuits are typically integrated in rigid silicon wafers, but flexibility opens up a wide range of applications. In a world where electronics are becoming more pervasive, flexibility is a highly desirable trait, but finding materials with the right mix of performance and manufacturing cost remains a challenge. Now a team of researchers from the University of Pennsylvania has sh ... read more


NANO TECH
NASA Technologists Test 'Game-Changing' Data-Processing Technology

UTC Aerospace Systems Selects Headwall Hyperspectral Imaging Sensor For SYERS-2 Program

Samsung launches new Internet-connected camera

20 workers injured as tornado hits Italy steel plant

NANO TECH
General Dynamics Awarded Contract Under New U.S. Army Rapid-Acquisition Communications Program

Astrium to provide military X-band satcoms to six UK Royal Navy vessels

Lockheed Martin to Demonstrate Key Component of Tactical MilSat Communications System

The Skynet 5D secure telecom satellite is received in French Guiana for Arianespace's December Ariane 5 mission

NANO TECH
South Korean rocket launch suspended

EchoStar and Arianespace sign new satellite launch services contract

Soyuz ready for Friday launch of Pleiades 1B at Kourou

Sea Launch Postpones Satellite Launch Until Dec. 3

NANO TECH
East Riding Of Yorkshire Council Selects Ctrack For Specialist Vehicle Tracking Solution

Researchers Use GPS Tracking to Monitor Crab Behavior

US Navy, Raytheon receive Pentagon engineering award for GPS-guided precision landing program

Lockheed Martin Completes Critical Environmental Test on GPS III Pathfinder

NANO TECH
Sandy adds to global air traffic gloom: IATA

India to buy nearly 130 Su-30 fighter jets from Russia

French police fire tear gas anew on airport protest

Owls' ability to fly in acoustic stealth provides clues to mitigating conventional aircraft noise

NANO TECH
Engineers pave the way towards 3D printing of personal electronics

Antenna-on-a-chip rips the light fantastic

Fabrication on patterned silicon carbide produces bandgap to advance graphene electronics

Important progress for spintronics

NANO TECH
TerraSAR-X image of the month - the Santorini volcano expands

Satellites used to track global smog level

Apple sacks exec in maps fiasco: report

China successfully launches remote sensing satellite

NANO TECH
Italian steel plant suspends operations in pollution row

Scientists pioneer method to predict environmental collapse

Degraded military lands to get ecological boost from CU-led effort

India's capital widens ban on plastic bags




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