. Space Industry and Business News .




.
CHIP TECH
Self-healing electronics could work longer and reduce waste
by Liz Ahlberg, Physical Sciences Editor for University of Illinois
Champaign IL (SPX) Dec 23, 2011

Self-healing electronics. Microcapsules full of liquid metal sit atop a gold circuit. When the circuit is broken, the microcapsules rupture, filling in the crack and restoring the circuit. Graphic by Scott White.

When one tiny circuit within an integrated chip cracks or fails, the whole chip - or even the whole device - is a loss. But what if it could fix itself, and fix itself so fast that the user never knew there was a problem?

A team of University of Illinois engineers has developed a self-healing system that restores electrical conductivity to a cracked circuit in less time than it takes to blink. Led by aerospace engineering professor Scott White and materials science and engineering professor Nancy Sottos, the researchers published their results in the journal Advanced Materials.

"It simplifies the system," said chemistry professor Jeffrey Moore, a co-author of the paper. "Rather than having to build in redundancies or to build in a sensory diagnostics system, this material is designed to take care of the problem itself."

As electronic devices are evolving to perform more sophisticated tasks, manufacturers are packing as much density onto a chip as possible. However, such density compounds reliability problems, such as failure stemming from fluctuating temperature cycles as the device operates or fatigue. A failure at any point in the circuit can shut down the whole device.

"In general there's not much avenue for manual repair," Sottos said. "Sometimes you just can't get to the inside. In a multilayer integrated circuit, there's no opening it up. Normally you just replace the whole chip. It's true for a battery too. You can't pull a battery apart and try to find the source of the failure."

Most consumer devices are meant to be replaced with some frequency, adding to electronic waste issues, but in many important applications - such as instruments or vehicles for space or military functions - electrical failures cannot be replaced or repaired.

The Illinois team previously developed a system for self-healing polymer materials and decided to adapt their technique for conductive systems.

They dispersed tiny microcapsules, as small as 10 microns in diameter, on top of a gold line functioning as a circuit. As a crack propagates, the microcapsules break open and release the liquid metal contained inside. The liquid metal fills in the gap in the circuit, restoring electrical flow.

"What's really cool about this paper is it's the first example of taking the microcapsule-based healing approach and applying it to a new function," White said.

"Everything prior to this has been on structural repair. This is on conductivity restoration. It shows the concept translates to other things as well."

A failure interrupts current for mere microseconds as the liquid metal immediately fills the crack. The researchers demonstrated that 90 percent of their samples healed to 99 percent of original conductivity, even with a small amount of microcapsules.

The self-healing system also has the advantages of being localized and autonomous. Only the microcapsules that a crack intercepts are opened, so repair only takes place at the point of damage.

Furthermore, it requires no human intervention or diagnostics, a boon for applications where accessing a break for repair is impossible, such as a battery, or finding the source of a failure is difficult, such as an air- or spacecraft.

"In an aircraft, especially a defense-based aircraft, there are miles and miles of conductive wire," Sottos said. "You don't often know where the break occurs. The autonomous part is nice - it knows where it broke, even if we don't."

Next, the researchers plan to further refine their system and explore other possibilities for using microcapsules to control conductivity. They are particularly interested in applying the microcapsule-based self-healing system to batteries, improving their safety and longevity.

This research was supported as part of the Center for Electrical Energy Storage, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science. Moore, Sottos and White are also affiliated with the Beckman Institute for Advanced Science and Technology at the U. of I. Co-authors of the paper included postdoctoral researchers Benjamin Blaiszik and Sharlotte Kramer and graduate students Martha Grady and David McIlroy.

Related Links
University of Illinois
Computer Chip Architecture, Technology and Manufacture
Nano Technology News From SpaceMart.com




.
.
Get Our Free Newsletters Via Email
...
Buy Advertising Editorial Enquiries






.

. 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
Quantum Computing Has Applications in Magnetic Imaging
Pittsburgh, PA (SPX) Dec 20, 2011
Quantum computing-considered the powerhouse of computational tasks-may have applications in areas outside of pure electronics, according to a University of Pittsburgh researcher and his collaborators. Working at the interface of quantum measurement and nanotechnology, Gurudev Dutt, assistant professor in Pitt's Department of Physics and Astronomy in the Kenneth P. Dietrich School of Arts and Sci ... read more


CHIP TECH
Landmark discovery has magnetic appeal for scientists

HokieSpeed, a new powerful supercomputer for the masses

New Take on Impacts of Low Dose Radiation

Need a new material? New tool can help

CHIP TECH
Raytheon's Navy Multiband Terminal Tests With On-Orbit AEHF Satellite

Northrop Grumman And ITT Exelis Team For Army Vehicular Radio

Lockheed Martin Ships First Mobile User Objective System Satellite To Cape For Launch

Satellite Tracking Specialist, Track24, wins Canadian Government Contract

CHIP TECH
Next ESA Astronaut Ready For Launch As Soyuz Rolls Out

Acra Control Proven in Low Earth Orbit

Vega moves closer to its first liftoff

Arianespace Signs First launch contracts for Vega

CHIP TECH
GIS Degree A Safe Bet for Professionals in the Ever-Growing Oil Industry

Lockheed Martin Delivers GPS 3 Pathfinder Satellite to Denver on Schedule

Galileo in tune as first navigation signal transmitted to Earth

Glonass satnav system targets Latin America and India

CHIP TECH
Brazil invests in rival to C-130 transport

China says it opposes EU airline emissions charges

European court upholds airline carbon tax

Brazilian firms win Boeing aviation deals

CHIP TECH
Terahertz pulse increases electron density 1,000-fold

Self-healing electronics could work longer and reduce waste

Quantum Computing Has Applications in Magnetic Imaging

Sharpening the lines could lead to even smaller features and faster microchips

CHIP TECH
China to launch country's first high-resolution mapping satellite for civil purposes

SMOS detects freezing soil as winter takes grip

NASA Gears Up for Airborne Study of Earth's Radiation Balance

Study Shows More Shrubbery in a Warming World

CHIP TECH
Dutch court turns down Trafigura appeal on toxic waste

Nicaragua files proceedings against Costa Rica with UN court

New US anti-pollution standards draw industry fire

Upper atmosphere facilitates changes that let mercury enter food chain


.

The content herein, unless otherwise known to be public domain, are Copyright 1995-2012 - Space Media Network. AFP and UPI Wire Stories are copyright Agence France-Presse and United Press International. 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