Subscribe free to our newsletters via your
. Solar Energy News .




TECH SPACE
How ion bombardment reshapes metal surfaces
by Staff Writers
Providence RI (SPX) May 24, 2012


This shows a computer-model image of an island of metal atoms formed after bombardment by noble gas ions. Atoms disturbed by the bombardment cluster together under the surface and then glide back up in a matter of 2.1 trillionths of a second, or picoseconds. Credit: Kim Lab/Brown University.

To modify a metal surface at the scale of atoms and molecules - for instance to refine the wiring in computer chips or the reflective silver in optical components - manufacturers shower it with ions. While the process may seem high-tech and precise, the technique has been limited by the lack of understanding of the underlying physics.

In a new study, Brown University engineers modeled noble gas ion bombardments with unprecedented richness, providing long-sought insights into how it works.

"Surface patterns and stresses caused by ion beam bombardments have been extensively studied experimentally but could not be predicted accurately so far," said Kyung-Suk Kim, professor of engineering at Brown and co-author of the study published May 23 in the Proceedings of the Royal Society A. "The new discovery is expected to provide predictive design capability for controlling the surface patterns and stresses in nanotechnology products."

The improved understanding could open the door to new technologies, Kim said, such as new approaches to make flexible electronics, biocompatible surfaces for medical devices, and more damage-tolerant and radiation-resistant surfaces. The research applies to so-called "FCC" metals such as copper, silver, gold, nickel, and aluminum. Those metals are crystals made up of cubic arrangements of atoms with one at each corner and one in each cube-face center.

Scientists have been trying to explain the complicated process for decades, and more recently they have begun to try modeling it on computers. Kim said the analysis of the Brown team, including lead author and postdoctoral scholar Sang-Pil Kim, was more sophisticated than previous attempts that focused on a single bombardment event and only isolated point defects within the metal substrate.

"In this work, for the first time, we investigate collective behavior of those defects during ion bombardments in terms of ion-substrate combinations," Kyung-Suk Kim said.

The new model revealed how ion bombardments can set three main mechanisms into motion in a matter of trillionths of a second. The researchers dubbed the mechanisms "dual layer formation," "subway-glide mode growth," and "adatom island eruption." They are a consequence of how the incoming ions melt the metal and then how it resolidifies with the ions occasionally trapped inside.

When ions hit the metal surface, they penetrate it, knocking away nearby atoms like billiard balls in a process that is akin, at the atomic level, to melting. But rather than merely rolling away, the atoms are more like magnetic billiard balls in that they come back together, or resolidify, albeit in a different order.

Some atoms have been shifted out of place. There are some vacancies in the crystal nearer to the surface, and the atoms there pull together across the empty space, that creates a layer with more tension. Beneath that is a layer with more atoms that have been knocked into it. That crowding of atoms creates compression. Hence there are now two layers with different levels of compression and tension.This "dual layer formation" is the precursor to the "subway-glide mode growth" and "adatom island eruption".

A hallmark of materials that have been bombarded with ions is that they sometimes produce a pattern of material that seems to have popped up out of the original surface. Previously, Kyung-Suk Kim said, scientists thought displaced atoms would individually just bob back up to the surface like fish killed in an underwater explosion. But what the team's models show is that these molecular islands are formed by whole clusters of displaced atoms that bond together and appear to glide back up to the surface.

"The process is analogous to people getting on a subway train at suburban stations, and they all come out together to the surface once the train arrives at a downtown station during the morning rush hour," Kyung-Suk Kim said.

The mechanisms, while offering a new explanation for the effects of ion bombardment, are just the beginning of this research.

"As a next step, I will develop prediction models for nanopattern evolution during ion bombardment which can guide the nanomanufacturing processes," Sang-Pil Kim said. "This research will also be expanded to other applications such as soft- or hard-materials under extreme conditions."

In addition to Kyung-Suk Kim and Sang-Pil Kim, other authors include Huck Beng Chew, Eric Chason and Vivek Shenoy.

.


Related Links
Brown University
Space Technology News - Applications and Research






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








TECH SPACE
In chemical reactions, water adds speed without heat
Madison WI (SPX) May 23, 2012
An international team of researchers has discovered how adding trace amounts of water can tremendously speed up chemical reactions-such as hydrogenation and hydrogenolysis-in which hydrogen is one of the reactants, or starting materials. Led by Manos Mavrikakis, the Paul A. Elfers professor of chemical and biological engineering at the University of Wisconsin-Madison, and Flemming Besenbac ... read more


TECH SPACE
Maps of Miscanthus genome offer insight into grass evolution

Relative reference: Foxtail millet offers clues for assembling the switchgrass genome

Lawrence Livermore work may improve the efficiency of the biofuel production cycle

Discovery of plant proteins may boost agricultural yields and biofuel production

TECH SPACE
Navy pilot training enhanced by AEMASE 'smart machine' developed at Sandia Labs

Paralyzed individuals use thought-controlled robotic arm to reach and grasp

Paralysed woman's thoughts control a DLR robot

People with paralysis control robotic arms to reach and grasp using brain computer interface

TECH SPACE
US DoI Approves Ocotillo Express Wind Project

Opening Day Draws Close for Janneby Wind Testing Site

NASA Satellite Measurements Imply Texas Wind Farm Impact on Surface Temperature

Scientists find night-warming effect over large wind farms in Texas

TECH SPACE
Toyota overtakes GM, regains number one spot

Calif. passes 'self-driving' cars bill

Tesla to launch electric sedan in US on June 22

Tilting Cars On The Assembly Line: A New Angle On Protecting Autoworkers

TECH SPACE
Oil prices rise on EU Greece support, Iran impasse

Kurds' oil deal with Turkey will hit Iraq

Tokyo raises 1bn yen to buy China dispute islets

Philippines 'lacks sincerity' in sea dispute: China

TECH SPACE
Bulgaria switches reactor back on grid after repairs

Westinghouse, Burns and McDonnell And Electric Boat Collaborate

Nuclear Industry Taking It on the Chin in States Across US

Westinghouse And Ameren Missouri Announce Creation Of NexStart SMR Alliance

TECH SPACE
Goldman to plow $40 bn into green energy

Japan urges lower energy use amid shortage fears

A practical guide to green products and services

The quick and easy way to measure power consumption

TECH SPACE
Cambodian forest campaigners fight rampant logging

Brazil fights illegal logging to protect Amazon natives

UF study finds logging of tropical forests needn't devastate environment

Brazil's threatened Awa tribe outnumbered, group says




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