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




NANO TECH
New Fiber Nanogenerators Could Lead To Electric Clothing
by Sarah Yang,
Berkeley CA (SPX) Feb 16, 2010


The goal of harvesting energy from mechanical movements through wearable nanogenerators is not new. Other research teams have previously made nanogenerators out of inorganic semiconducting materials, such as zinc oxide or barium titanate. "Inorganic nanogenerators - in contrast to the organic nanogenerators we created - are more brittle and harder to grow in significant quantities," Lin said.

In research that gives literal meaning to the term "power suit," University of California, Berkeley, engineers have created energy-scavenging nanofibers that could one day be woven into clothing and textiles.

These nano-sized generators have "piezoelectric" properties that allow them to convert into electricity the energy created through mechanical stress, stretches and twists.

"This technology could eventually lead to wearable 'smart clothes' that can power hand-held electronics through ordinary body movements," said Liwei Lin, UC Berkeley professor of mechanical engineering and head of the international research team that developed the fiber nanogenerators.

Because the nanofibers are made from organic polyvinylidene fluoride, or PVDF, they are flexible and relatively easy and cheap to manufacture.

Although they are still working out the exact calculations, the researchers noted that more vigorous movements, such as the kind one would create while dancing the electric boogaloo, should theoretically generate more power. "And because the nanofibers are so small, we could weave them right into clothes with no perceptible change in comfort for the user," said Lin, who is also co-director of the Berkeley Sensor and Actuator Center at UC Berkeley.

The fiber nanogenerators are described in this month's issue of Nano Letters, a peer-reviewed journal published by the American Chemical Society.

The goal of harvesting energy from mechanical movements through wearable nanogenerators is not new. Other research teams have previously made nanogenerators out of inorganic semiconducting materials, such as zinc oxide or barium titanate. "Inorganic nanogenerators - in contrast to the organic nanogenerators we created - are more brittle and harder to grow in significant quantities," Lin said.

The tiny nanogenerators have diameters as small as 500 nanometers, or about 100 times thinner than a human hair and one-tenth the width of common cloth fibers. The researchers repeatedly tugged and tweaked the nanofibers, generating electrical outputs ranging from 5 to 30 millivolts and 0.5 to 3 nanoamps.

Furthermore, the researchers report no noticeable degradation after stretching and releasing the nanofibers for 100 minutes at a frequency of 0.5 hertz (cycles per second).

Lin's team at UC Berkeley pioneered the near-field electrospinning technique used to create and position the polymeric nanogenerators 50 micrometers apart in a grid pattern. The technology enables greater control of the placement of the nanofibers onto a surface, allowing researchers to properly align the fiber nanogenerators so that positive and negative poles are on opposite ends, similar to the poles on a battery.

Without this control, the researchers explained, the negative and positive poles might cancel each other out and reducing energy efficiency.

The researchers demonstrated energy conversion efficiencies as high as 21.8 percent, with an average of 12.5 percent.

"Surprisingly, the energy efficiency ratings of the nanofibers are much greater than the 0.5 to 4 percent achieved in typical power generators made from experimental piezoelectric PVDF thin films, and the 6.8 percent in nanogenerators made from zinc oxide fine wires," said the study's lead author, Chieh Chang, who conducted the experiments while he was a graduate student in mechanical engineering at UC Berkeley.

"We think the efficiency likely could be raised further," Lin said. "For our preliminary results, we see a trend that the smaller the fiber we have, the better the energy efficiency. We don't know what the limit is."

Other co-authors of the study are Yiin-Kuen Fuh, a UC Berkeley graduate student in mechanical engineering; Van H. Tran, a graduate student at the Technische Universit�t Munchen (Technical University of Munich) in Germany; and Junbo Wang, a researcher at the Institute of Electronics at the Chinese Academy of Sciences in Beijing, China.

The National Science Foundation and the Defense Advanced Research Projects Agency helped support this research.

.


Related Links
University of California, Berkeley
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
Nano For The Senses And Much More At Nano Tech 2010
Tokyo, Japan (SPX) Feb 04, 2010
A mystical glow emanates from the display case. A white light appears out of nowhere. And a light source is invisible - at least at first glance. Only upon close examination does the source of the apparently supernatural illumination become visible: a light diode, smaller than a pinhead, passes through thousands of infinitesimal lens structures measuring only a few hundred nanometers, et voil�: ... read more


NANO TECH
Astronomers Say Presence Of Water On Moon Will Lead To More Missions

Moon Exploration is Not Dead

Seed Bank For The Moon

Obama to propose abandoning US return to Moon: report

NANO TECH
Spirit Parks For The Winter

Phobos Flyby Season Starts Again

A History Of Changes In A Mars Crater

Opportunity Studies Chocolate Hills Rock

NANO TECH
Voyager Celebrates 20-Year-Old Valentine To Solar System

NASA Invites Indonesia To Join In Space Research

Riding Out The Snow Storm Inside Goddard To Carry On The Mission

Terrestrial Gamma-Ray Flashes Hazards To Air Travelers

NANO TECH
UK's First China Space Race Exhibition Launched

No Spacewalk From Tiangong-1

China's Mystery Spacelab

China launches orbiter for navigation system: state media

NANO TECH
Astronauts Move Cupola

Third And Final STS-130 Spacewalk Tonight

ISS gets room with a view as astronauts attach space cupola

Space Station's Big Bay Window Installed

NANO TECH
Brazil, China To Postpone Joint Satellite Launching To 2011

Arianespace Takes Delivery Of Two More Birds For Orbital Delivery

Arianespace To Launch Athena-Fidus Satellite

ILS And SES To Pair SES-3 With Kazsat-2 Launch

NANO TECH
Seeing ExoPlanet Atmospheres From The Ground

New Technique For Detecting Earth-Like Planets

New technique helps search for another Earth

NASA's Rosetta "Alice" Spectrometer Reveals Earth's UV Fingerprint

NANO TECH
Breakthrough For Mobile Television

Sony to stop selling ultra-thin organic TV in Japan

Russian satellite breaks up over perplexed Mexicans

Five billion people to use mobile phones in 2010: UN




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