Back home   |   Bookmark   |   Start page   |   Site map    
Services
News
Channels
Home & Family
Leisure
Technology
Business
Science
Site Search
Free email




Scientists use green approach to transform plastics manufacturing process

Theallineed.com
(NC&T/CM) The revolutionary improvement in atom transfer radical polymerization (ATRP) now enables large-scale production of many specialty plastics, according to the scientists, whose work appears in a special issue of the Proceedings of the National Academy of Sciences (PNAS) devoted to materials science.

The new "green" version of ATRP will allow existing materials to be made more efficiently, reducing industrial purification costs before and after running a reaction and permitting the production of new, unprecedented materials.

"By reducing the level of the copper catalyst used in ATRP, we have made this process at least 100 times more efficient and much more amenable to industrial processes," said Krzysztof Matyjaszewski, J.C. Warner Professor of Natural Sciences and director of the Center for Macromolecular Engineering in the Mellon College of Science at Carnegie Mellon.

Developed by Matyjaszewski, ATRP is a broadly adopted process that allows the production of specialty polymers for coatings, adhesives, lubricants, cosmetics, electronics and numerous other markets. ATRP's strength lies in its ability to combine chemically diverse subunits (monomers) into multiple arrangements that create specialized polymers. This technology enables production of "smart" materials that can respond intelligently to altered environments, such as changes in pressure, acidity, light exposure and other variables.

These photos show the difference in the amount of catalyst contained in a polymer solution using standard ATRP (left) versus the 'green' Atrp process that Matyjaszewski. (Photo: Carnegie Mellon)
ATRP is being licensed to several companies that have already begun commercial production in the United States, Europe and Japan. But Matyjaszewski says large-scale production of polymers by ATRP has been limited because ATRP previously required a high concentration of copper catalyst that had to be removed from finished products.

"Our new ATRP processes significantly reduce the cost of recycling the catalyst and also decrease the release of hazardous reaction byproducts found in industrial waste," Matyjaszewski added.

During ATRP, scientists produce a complex polymer structure using a special catalyst to add one or a few monomer units at a time to a growing polymer chain. ATRP requires a balance between two species of copper (Cu) catalyst, CuI and CuII. But as an ATRP reaction progresses, CuII builds up. Typically, researchers add more CuI to compensate for this effect and maintain the balance between the two copper species. But this approach ultimately generates materials with high overall levels of copper — levels that are too costly to remove efficiently on a large-scale industrial basis.

The PNAS report highlights the team's novel use of "excess reducing agents" to lower the amount of copper catalyst from 5,000 parts per million (ppm) to 10 ppm. The team showed that you can steadily add environmentally benign "reducing" agents — vitamin C, sugars or standard free radicals — to chemically reduce CuII to CuI. This unprecedented approach continuously reduces CuII to CuI at the same rate CuII forms while retaining the desired balance between the two states. Ultimately, this technique dramatically lowers the overall amount of Cu catalyst used in ATRP by as much as 1,000 times.

The team's new technology virtually eliminates the need to remove miniscule amounts of catalyst remaining in a product. For example, many ATRP-generated plastics for medical implants would be acceptable from a health perspective because they contain so little copper. However, if the target application — such as a coating for a biomedical stent — absolutely requires the removal of residual catalyst, companies will now have much less of it to take out, significantly lowering removal costs, according to the authors.

The new ATRP technique also allows for production of higher molecular weight chains, thereby extending the range of accessible materials that could be made using this method. For example, chemists could grow high molecular weight polymers with precise control, providing even larger templates for nanoscale carbon structures used in computer screen field emission displays and semi-conductors that regulate the flow of electricity in sensors, some only a fraction of the width of a hair.

ATRP differs significantly from conventional polymer manufacturing methods. This "living," synthetic process can be shut down or restarted at will, depending on how the temperature and other conditions of the reaction are varied. ATRP is an exceptionally robust way to uniformly and precisely control the chemical composition and architecture of polymers as well as the growth of every polymer chain, all while employing a broad range of monomers.

About the Author
©2006 All rights reserved

More articles
Gastric bypass
Neuron's role
Nerve cells
Popeye and the spinach
Antioxidants in the berries
Fighting cancer with aspirin
Dna hydrogels
Plastics manufacturing process
Decaffeinated coffee
Rescuing injured hearts
Material stops bleeding
Emotionally ambivalent people
Vascular grafts
The brain boots
Repairs of the genetic
Color names
Neural signature of bilingualism
Child affected the autism
Smallest cellular genome
Fat kids
Quotes
If I work incessantly to the last, nature owes me another form of existence when the present one collapses. -- Goethe, 1829

If a few idiots want to risk their necks flying across the country thats fine, but nothing will ever replace trains.


Writers
If you are a writer and want to see your article published at Theallineed.com, just click here to submit.

Info
Today...
In the news...
How often do you go to fast food restaurants?
Never
Once a month
Once a week
Some times a week
Every day
Other
 
Things to ponder
Have you ever imagined a world with no hypothetical situations?

Did you know...
Mark Twain, born on a year Halley's Comet visited Earth, correctly predicted he would die the next time it came by.

Quote of the day
History is more or less bunk.
Henry Ford

Featured article

 
© 2002 - 2007 Lexur