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




SOLAR DAILY
'Active' surfaces control what's on them
by Staff Writers
Boston MA (SPX) Aug 05, 2014


When exposed to a magnetic field (magnet is seen at far right), the droplet is pulled toward the magnet by its thin cloak of ferrofluid, even though the droplet itself is not magnetic. Image courtesy of the researchers.

Researchers at MIT and in Saudi Arabia have developed a new way of making surfaces that can actively control how fluids or particles move across them. The work might enable new kinds of biomedical or microfluidic devices, or solar panels that could automatically clean themselves of dust and grit.

"Most surfaces are passive," says Kripa Varanasi, an associate professor of mechanical engineering at MIT, and senior author of a paper describing the new system in the journal Applied Physics Letters. "They rely on gravity, or other forces, to move fluids or particles."

Varanasi's team decided to use external fields, such as magnetic fields, to make surfaces active, exerting precise control over the behavior of particles or droplets moving over them.

The system makes use of a microtextured surface, with bumps or ridges just a few micrometers across, that is then impregnated with a fluid that can be manipulated - for example, an oil infused with tiny magnetic particles, or ferrofluid, which can be pushed and pulled by applying a magnetic field to the surface. When droplets of water or tiny particles are placed on the surface, a thin coating of the fluid covers them, forming a magnetic cloak.

The thin magnetized cloak can then actually pull the droplet or particle along as the layer itself is drawn magnetically across the surface. Tiny ferromagnetic particles, approximately 10 nanometers in diameter, in the ferrofluid could allow precision control when it's needed - such as in a microfluidic device used to test biological or chemical samples by mixing them with a variety of reagents.

Unlike the fixed channels of conventional microfluidics, such surfaces could have "virtual" channels that could be reconfigured at will.

While other researchers have developed systems that use magnetism to move particles or fluids, these require the material being moved to be magnetic, and very strong magnetic fields to move them around.

The new system, which produces a superslippery surface that lets fluids and particles slide around with virtually no friction, needs much less force to move these materials. "This allows us to attain high velocities with small applied forces," says MIT graduate student Karim Khalil, the paper's lead author.

The new approach, he says, could be useful for a range of applications: For example, solar panels and the mirrors used in solar-concentrating systems can quickly lose a significant percentage of their efficiency when dust, moisture, or other materials accumulate on their surfaces. But if coated with such an active surface material, a brief magnetic pulse could be used to sweep the material away.

"Fouling is a big problem on such mirrors," Varanasi says. "The data shows a loss of almost 1 percent of efficiency per week."

But at present, even in desert locations, the only way to counter this fouling is to hose the arrays down, a labor- and water-intensive method. The new approach, the researchers say, could lead to systems that make the cleaning process automatic and water-free.

"In the desert environment, dust is present on a daily basis," says co-author Numan Abu-Dheir of the King Fahd University of Petroleum and Minerals (KFUPM) in Saudi Arabia.

"The issue of dust basically makes the use of solar panels to be less efficient than in North America or Europe. We need a way to reduce the dust accumulation."

One advantage of the new active-surface system is its effectiveness on a wide range of surface contaminants: "You want to be able to propel dust or liquid, many materials on surfaces, whatever their properties," Varanasi says.

MIT postdoc Seyed Mahmoudi, a co-author of the paper, notes that electric fields cannot penetrate into conductive fluids, such as biological fluids, so conventional systems wouldn't be able to manipulate them. But with this system, he says, "electrical conductivity is not important."

In addition, this approach gives a great deal of control over how material moves. "Active fields - such as electric, magnetic, and acoustic fields - have been used to manipulate materials," Khalil says. "But rarely have you seen the surface itself interact actively with the material on it," he says, which allows much greater precision.

While this initial demonstration used a magnetic fluid, the team says the same principle could be applied using other forces to manipulate the material, such as electric fields or differences in temperature.

.


Related Links
Massachusetts Institute of Technology
All About Solar Energy at SolarDaily.com






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








SOLAR DAILY
Flyer Hopes To Make Solar Flying Popular
Midland Park NJ (SPX) Aug 01, 2014
Solar-powered aircraft could offer a low-cost way to train future pilots, if the partners developing the Sun Flyer succeed in their ambitious plans. A technology demonstrator-a PC-Aero Elektra One-for the Sun Flyer solar-powered airplane made its first flight earlier this month in Munich, Germany.. While the Elektra One technology demonstrator didn't fly with solar panels, the panels will ... read more


SOLAR DAILY
Printing the Metals of the Future

New characteristics of complex oxide surfaces revealed

Building the Foundation for Future Synthetic Biology Applications with BRICS

Collecting just the right data

SOLAR DAILY
U.S. government using commercial Inmarsat 5 satellite

Lockheed Martin Selected For USAF Satellite Hosted Payload Initiative

AF satellites to contribute to space neighborhood watch

Harris receives order for new tactical radios

SOLAR DAILY
US Launches Two Surveillance Satellites From Cape Canaveral

United Launch Alliance Marks 85th Successful Launch

US aerospace firm outlines New Zealand-based space program

China to launch satellite for Venezuela

SOLAR DAILY
GPS-guided shell in full-rate production

Targeting device that helps reduce collateral damage tested by the Army

China releases geoinformation industry plan

Galileo's 'midwives' stand ready for launch

SOLAR DAILY
Asia's richest man targets aviation and Irish firm AWAS

The evolution of airplanes

China's military says drills affecting civil flights

Newest Tiger attack helo tested in Djibouti

SOLAR DAILY
German chip-maker Infineon ups full-year forecast

Layered 2D crystals might enable superconductors at high temps

Unleashing the power of quantum dot triplets

The birth of topological spintronics

SOLAR DAILY
NASA's IceCube No Longer On Ice

New NASA Studies to Examine Climate/Vegetation Links

Quiet Year Expected for Amazon Forest Fires in 2014

OCO-2 Data to Lead Scientists Forward into the Past

SOLAR DAILY
Scientists warn time to stop drilling in the dark

Malaysia air quality 'unhealthy' as haze obscures skies

Trees clean air, save 850 lives a year

Air pollution modeling reveals broad-scale impacts of pollution removal by trees




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news 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 All images and articles appearing on Space Media Network have been edited or digitally altered in some way. Any requests to remove copyright material will be acted upon in a timely and appropriate manner. Any attempt to extort money from Space Media Network will be ignored and reported to Australian Law Enforcement Agencies as a potential case of financial fraud involving the use of a telephonic carriage device or postal service.