Saturday, October 8, 2011

Soft Spheres Settle İn Somewhat Surprising Structure

Latex paints and drug suspensions such as insulin or amoxicillin that do not need to be shaken or stirred may be possible thanks to a new understanding of how particles separate in liquids, according to Penn State chemical engineers, who have developed a method for predicting the way colloidal components separate based on energy. "The ongoing assumption was that if you have a mixture of different sized particles in a liquid, the faster-settling particles will end up on the bottom," said Darrell Velegol, professor of chemical engineering. "We found that in many cases it doesn't matter how fast they settle. The particles keep jostling until they reach the low-energy state."

Another known mechanism for settling is the Brazil nut effect, where dry particles eventually sort themselves out with the larger particles on the top -- the way the Brazil nuts are always found on the top of the can of mixed nuts. This mechanism, however, does not apply to particles in liquids.

Velegol, working with César González Serrano, former graduate student, and Joseph J. McDermott, graduate student, found that settling speeds were not the determining characteristics of settling mixtures, but that the particles on the bottom are the ones in the lowest energy state. They reported their results in today's (July 24) online issue of Nature Materials.

"Sedimentation is an old field, and it's taken us a long time to figure it out," said Velegol.

Velegol explains that small colloidal particles -- roughly 1 micrometer, about 1 percent as thick as a human hair -- in weakly ionic liquids like water are soft, surrounded by an electrostatic field that allows them to feel other particles before they actually touch. Because of the electrostatic charge, repel the other particles, allowing the particles and the liquid to keep in constant motion.

In higher-ionic-strength liquids like seawater, spheres are hard, unable to sense other spheres until they actually touch. They create glassy mixtures where the particles become locked in place before they find their lowest energy state.

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