News Release

Buckyballs offer environmental benefits

In Rice University study, treated carbon-60 molecules remove metals from liquids

Peer-Reviewed Publication

Rice University

Treated Carbon-60 Molecules

image: Treated carbon-60 molecules have the ability to recover valuable metals from liquids, including water and potential pollutants. In testing various metals, Rice University researchers found that charge and ionic radius influence how the metals bind to the hydroxylated buckyballs. view more 

Credit: Jeff Fitlow/Rice University

Treated buckyballs not only remove valuable but potentially toxic metal particles from water and other liquids, but also reserve them for future use, according to scientists at Rice University.

The Rice lab of chemist Andrew Barron has discovered that carbon-60 fullerenes (aka buckyballs) that have gone through the chemical process known as hydroxylation can aggregate into pearl-like strings as they bind to and separate metals - some better than others - from solutions. Potential uses of the process include the environmentally friendly removal of metals from acid mining drainage fluids, a waste product of the coal industry, as well as from fluids used for hydraulic fracturing in oil and gas production.

Barron said the treated buckyballs handled metals with different charges in unexpected ways, which may make it possible to pull specific metals from complex fluids while ignoring others.

The study led by Rice undergraduate Jessica Heimann appeared in the Royal Society of Chemistry journal Dalton Transactions.

Previous research in Barron's lab had shown that hydroxylated fullerenes (known as fullerenols) combined with iron ions to form an insoluble polymer. Heimann and colleagues conducted a series of experiments to explore the relative binding ability of fullerenols to a range of metals.

"It's all very well to say I can take metals out of water, but for more complex fluids, the problem is to take out the ones you actually want," Barron said. "Acid mining waste, for example, has large amounts of iron and aluminum and small amounts of nickel and zinc and copper, the ones you want. To be frank, iron and aluminum are not the worst metals to have in your water, because they're in natural water, anyway.

"So our goal was to see if there is a preference between different types of metal, and we found one. Then the question was: Why?"

The answer was in the ions. An atom or molecule with more or fewer electrons than protons is an ion, with a positive or negative charge. All the metals the Rice lab tested were positive, with either 2-plus or 3-plus charges.

"Normally, the bigger the metal, the better it separates," Barron said, but experiments proved otherwise. Two-plus metals with a smaller ionic radius bound better than larger ones. (Of those, zinc bound most tightly.) But for 3-plus ions, large worked better than small.

"That's really weird," Barron said. "The fact that there are diametrically opposite trends for metals with a 2-plus charge and metals with a 3-plus charge makes this interesting. The result is we should be able to preferentially separate out the metals we want."

The experiments found that fullerenols combined with a dozen metals, turning them into solid cross-linked polymers. In order of effectiveness and starting with the best, the metals were zinc, cobalt, manganese, nickel, lanthanum, neodymium, cadmium, copper, silver, calcium, iron and aluminum.

The "pearl" reference isn't far from literal, as one inspiration for the paper was the fact that metal ions are cross-linking agents for proteins that give certain marine mussels an amazing ability to adhere to wet rocks.

Heimann, a senior, started on the project before spending a semester at Rice's sister institution in Germany, Jacobs University. "I initially worked with carbon nanotubes, oxidizing them to see how they would bind metals, and then I went abroad," she said. By the time she came back, Barron was ready to try C-60. "Coming from Rice and its history with buckyballs, I thought that would be really cool," Heimann said.

"I liked being able to see the end goal of making a filter that could be used to address contaminated water," she said.

Barron said fullerenols act as chelate agents, which determine how ions and molecules bind with metal ions. Experiments with various metals showed the fullerenols bound with them in less than a minute, after which the combined solids could be filtered out.

Barron said the choices of aluminum, zinc and nickel for testing were due to their co-presence with iron in acid mining drainage water. Similarly, cadmium was tested for its association with fertilizer and sewage sludge and copper with mining discharge. Nickel, lanthanum and neodymium are used in batteries and drive motors in hybrid vehicles.

Barron said the research shows the versatility of the buckyball, discovered at Rice in 1985 by Nobel Prize winners Rick Smalley, Robert Curl and Harold Kroto. It also points the way forward. "The understanding we now have is allowing us to find alternatives to C-60s to design ways in which we can separate out metals more efficiently," he said.

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Co-authors of the paper are Rice graduate student Lauren Morrow and alumnus Robin Anderson. Barron is the Charles W. Duncan Jr.-Welch Professor of Chemistry and a professor of materials science and nanoengineering.

Read the abstract at http://pubs.rsc.org/en/content/articlelanding/2015/dt/c4dt03376k#!divAbstract

This news release can be found online at http://news.rice.edu/2015/02/09/binding-bad-buckyballs-offer-environmental-benefits-2/

Follow Rice News and Media Relations via Twitter @RiceUNews

Related Materials:

Barron Research Group: http://barron.rice.edu/Barron.html

Images for download:

http://news.rice.edu/wp-content/uploads/2015/02/0209_METAL-1-WEB.jpg

A transmission electron microscope image shows the aggregated "strings of pearls" that form when hydroxylated carbon-60 molecules crosslink with metals - in this case, iron and nickel - in a solution. The research at Rice University suggests it may be possible to use the technique to remove specific metal molecules from solutions. The scale bar is 50 nanometers. (Credit: Barron Group/Rice University)

http://news.rice.edu/wp-content/uploads/2015/02/0209_METAL-2-web.jpg

Treated carbon-60 molecules have the ability to recover valuable metals from liquids, including water and potential pollutants. In testing various metals, Rice University researchers found that charge and ionic radius influence how the metals bind to the hydroxylated buckyballs. (Credit: Jeff Fitlow/Rice University)

http://news.rice.edu/wp-content/uploads/2015/02/0209_METAL-3-WEB.jpg

Treated carbon-60 molecules have the ability to recover valuable metals from liquids, including water and potential pollutants. In testing various metals, Rice University researchers found that charge and ionic radius influence how the metals bind to the hydroxylated buckyballs. (Credit: Jeff Fitlow/Rice University)

http://news.rice.edu/wp-content/uploads/2015/02/0209_METAL-4-WEB.jpg

Rice University undergraduate student Jessica Heimann, left, and chemist Andrew Barron led a project in which carbon-60 molecules, aka buckyballs, were treated to allow them to remove valuable but potentially toxic metals from water and other liquids. (Credit: Jeff Fitlow/Rice University)

http://news.rice.edu/wp-content/uploads/2015/02/0209_METAL-5-WEB.jpg

Rice University chemist Andrew Barron, left, and undergraduate student Jessica Heimann led a project in which carbon-60 molecules, aka buckyballs, were treated to allow them to remove valuable but potentially toxic metals from water and other liquids. (Credit: Jeff Fitlow/Rice University)

Located on a 300-acre forested campus in Houston, Rice University is consistently ranked among the nation's top 20 universities by U.S. News & World Report. Rice has highly respected schools of Architecture, Business, Continuing Studies, Engineering, Humanities, Music, Natural Sciences and Social Sciences and is home to the Baker Institute for Public Policy. With 3,920 undergraduates and 2,567 graduate students, Rice's undergraduate student-to-faculty ratio is just over 6-to-1. Its residential college system builds close-knit communities and lifelong friendships, just one reason why Rice is highly ranked for best quality of life by the Princeton Review and for best value among private universities by Kiplinger's Personal Finance.


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