Matter News
Recent News |  Archives |  Tags |  About |  Newsletter |  Submit News |  Links |  Subscribe to MatterNews.com RSS Feed Subscribe
New Articles
Researchers have proven a significant version of the quantum unique ergodicity conjecture 10/12/2008

Lab probes iron-arsenic superconductors 10/11/2008

Spallation Neutron Source sends first neutrons to 'Big Bang' beam line 10/10/2008

Scientists engineer superconducting thin films 10/9/2008

New knowledge about thermoelectric materials could give better energy efficiency 10/8/2008

Fuzziness on the road to physics' grand unification theory 10/7/2008

Brilliantly bright light source is one step closer to reality, says scientist 10/5/2008

Zooming way in, technique offers close-ups of electrons, nuclei 10/2/2008

Micro honeycomb materials enable new physics in aicraft sound reduction 9/30/2008

Research gets to the heart of the scatter 9/28/2008

Quantum leap in hi-tech performance 9/26/2008

Unlocking the secret of the Kondo Effect 9/23/2008

Checking people at airports - with terahertz radiation 9/20/2008

Scientists create first dense gas of ultracold 'polar' molecules 9/19/2008

Study of repeater brings quantum communication closer to reality 9/18/2008

Disorder enables extreme sensitivity in piezoelectric materials (5/19/2008)

Tags:
materials, electronics, neutron scattering

A research team working at the National Institute of Standards and Technology (NIST) has found an explanation for the extreme sensitivity to mechanical pressure or voltage of a special class of solid materials called relaxors.* The ability to control and tailor this sensitivity would allow industry to enhance a range of devices used in medical ultrasound imaging, loudspeakers, sonar and computer hard drives.

Relaxors are piezoelectrics-they change shape when a battery is connected across opposite ends of the material, or they produce a voltage when squeezed. "Relaxors are roughly 10 times more sensitive than any other known piezoelectric," explains NIST researcher Peter Gehring. They are extremely useful for device applications because they can convert between electrical and mechanical forms of energy with little energy loss.

A team of scientists from Brookhaven National Laboratory, Stony Brook University, Johns Hopkins University and NIST used the neutron scattering facilities at the NIST Center for Neutron Research (NCNR) to study how the atomic "acoustic vibrations," which are essentially sound waves, inside relaxors respond to an applied voltage. They found that an intrinsic disorder in the chemical structure of the relaxor crystal apparently is responsible for its special properties.

Atoms in solids are usually arranged in a perfect crystal lattice, and they vibrate about these positions and propagate energy in the form of sound waves. In typical piezoelectric materials, these acoustic vibrations persist for a long time much like the ripples in a pond of water long after a pebble has been thrown in.

Not so with relaxors: these vibrations quickly die out. The research team led by Brookhaven's Guangyong Xu, compared how the sound waves propagated in different directions, and observed a large asymmetry in the response of the relaxor lattice when subjected to an applied voltage.

"We learned that the lattice's intrinsic chemical disorder affects the basic behavior and organization of the materials," says Gehring. The disorder that breaks up the acoustic vibrations makes the material structurally unstable and very sensitive to applied pressure or an applied voltage.

That disorder occurs because the well-defined lattice of atoms alternates randomly between one of three of its elements-zinc, niobium and titanium-each of which carries a different electrical charge.

The research was funded by the Office of Basic Energy Sciences within the U.S. Department of Energy's Office of Science and the Natural Science and Research Council of Canada.

* G. Xu, J. Wen, C. Stock and P.M. Gehring. Phase instability induced by polar nanoregions in a relaxor ferroelectric system. Nature Materials. Published online May 11, 2008.

Note: This story has been adapted from a news release issued by the

Post Comments:

Search

  Archives |  Submit News |  Advertise With Us |  Contact Us |  Links
All contents © 2000 - 2009 Web Doodle, LLC. All rights reserved.