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    Watch: UV light directs groups of specks in liquid

    (Credit: Getty Images)

    A new, simple, and inexpensive method uses ultraviolet light to control particle motion and assembly within liquids.

    The method could improve drug delivery, chemical sensors, and fluid pumps. It encourages particles—from plastic microbeads, to bacterial spores, to pollutants—to gather and organize at a specific location within a liquid and, if researchers want, to move to new locations.

    “Many applications related to sensors, drug delivery, and nanotechnology require the precise control of the flow of fluids,” says senior author Ayusman Sen, professor of chemistry at Penn State. “Researchers have developed a number of strategies to do so, including nanomotors and fluid pumps, but prior to this study we did not have an easy way to gather particles at a particular location so that they can perform a useful function and then move them to a new location so they can perform the function again.

    particles in liquid
    Researchers move particles with the new method. (Credit: Penn State)

    Speck stampede

    “Say for example you want to build a sensor to detect particles of a pollutant, or bacterial spores in a water sample,” says Sen. “With this new method, we can simply add nanoparticles of gold or titanium dioxide and shine a light to encourage the pollutant particles or spores to gather. By concentrating them in one spot, they become easier to detect. And because light is so easy to manipulate, we have a high degree of control.”

    Just as researchers could gather pollutant particles at a particular location, the method could gather silica or polymer beads that carry a payload, like antibodies or drugs, at particular locations within a fluid.

    The new method first involves adding a small amount of titanium dioxide or gold nanoparticles to a liquid, like water, that also contains larger particles of interest, like pollutants or beads carrying a payload. Shining a light at a specific point in the liquid heats up the tiny metal nanoparticles, and the heat then transfers to the fluid. The warmer liquid then rises at the point of light—just as warm air rises in a chilly room—and cooler water rushes in to fill the space that the warm water just left, bringing the larger particles with it.

    “This causes the larger particles to collect at the point of UV light, where they form closely packed, well-organized structures called colloidal crystals,” says first author Benjamin Tansi, a graduate student in chemistry. “Changing the intensity of the light or the amount of titanium dioxide or gold particles alters how quickly this process occurs.”

    polystyrene particles
    Researchers used the method to gather polystyrene particles, which form a well-packed structure called a colloid crystal. (Credit: Sen Lab/Penn State)

    When researchers remove the light, the larger particles randomly diffuse through the liquid. But if they relocate the light instead, the larger particles move toward the new point of light, mostly maintaining their structure as they move. This dynamic assembly, disassembly, and movement of organized particles may have important implications for sensing and drug delivery.

    “This process is most efficient when gold nanoparticles are used, but we wanted to find an alternative that was less expensive and more accessible,” says Tansi. “We were pleased to find that this method also works with titanium dioxide, an inexpensive and harmless nanoparticle used in cosmetics and as a food additive.”

    Creating a flow

    In addition to water, the researchers demonstrated the effectiveness of this method in hexadecane, an organic liquid.

    “Particles usually don’t assemble very well in salty or non-aqueous environments because everything sticks together,” says Sen. “But here we show that particles can assemble using this method in hexadecane, which suggests we may be able to apply this technique in, for example, biological fluids. To our knowledge this is the first demonstration of light-driven fluid pumping in an organic medium.”

    Using the new method, the researchers gather the particles of interest into an organized structure at the point of light (left). When the light is moved to a new location, the particles move toward the new point of light (right), as depicted in these video screenshots. (Credit: Sen Lab, Penn State) View larger

    Researchers used mathematical models to describe the dynamics of the system. In addition to describing how particles move in the system, the models confirm that only a minor change in temperature—less than a degree Celsius—from the ultraviolet light is necessary to induce the fluid flow.

    The research team is currently testing the limits of this method, for example if particles can move uphill toward the light source or if the method can help sort particles by size.

    “We knew that heating gold nanoparticles in suspension could create a fluid flow,” says Tansi, “but prior to this study no one had looked to see if these kinds of thermally-driven fluid flows could be used to do anything useful.

    “Because ultraviolet light and titanium dioxide are so easy to control, we think this method could be harnessed in various technologies in the future. For example, a fluid pump that relies on this method could potentially replace the bulky and more expensive traditional pumps that require a power source or that rely on magnetics or mechanical movement to function,” Tansi says.

    The paper appears in the journal Angewandte Chemie. Additional researchers Penn State and the University of Pittsburgh contributed to the work. The National Science Foundation funded the research.

    Source: Penn State

    Play Video

    Nano-magnets draw last bits of oil from water

    (Credit: Getty Images)

    Researchers have created a magnetic nanoparticle compound that efficiently separates crude oil droplets that have proven difficult to remove with current methods from produced water.

    Oil and water tend to separate, but mix well enough to form stable oil-in-water emulsions in “produced water” from oil reservoirs to become a problem. The new solution reliably removes 99 percent of the emulsified oil that remains after other processing is done.

    nanoparticles in action
    The nanoparticles draw in the bulk of the oil and then the magnet attracts them, as demonstrated here. (Credit: Jeff Fitlow via Rice)

    Produced water comes from production wells along with oil. It often includes chemicals and surfactants pumped into a reservoir to push oil to the surface from tiny pores or cracks, either natural or fractured, deep underground. Under pressure and the presence of soapy surfactants, some of the oil and water form stable emulsions that cling together all the way back to the surface, researchers say.

    While methods exist to separate most of the oil from the production flow, engineers at Shell Global Solutions, which sponsored the project, told Sibani Lisa Biswal, an associate professor of chemical and biomolecular engineering and of materials science and nanoengineering at Rice University, and her team that the last 5 percent of oil tends to remain stubbornly emulsified with little chance of recovery.

    “Injected chemicals and natural surfactants in crude oil can oftentimes chemically stabilize the oil-water interface, leading to small droplets of oil in water which are challenging to break up,” Biswal says.

    Biswal’s lab’s experience with magnetic particles and an expertise in amines from former postdoctoral researcher and lead author Qing Wang led the researchers to combine techniques.

    They added amines to magnetic iron nanoparticles. Amines carry a positive charge that helps the nanoparticles find negatively charged oil droplets. Once they do, the nanoparticles bind the oil. Magnets then pull the droplets and nanoparticles out of the solution.

    “It’s often hard to design nanoparticles that don’t simply aggregate in the high salinities that are typically found in reservoir fluids, but these are quite stable in the produced water,” Biswal says.

    Tiny ‘raspberries’ keep emulsions from splitting

    The researchers tested enhanced nanoparticles on emulsions made in the lab with model oil as well as crude oil.

    In both cases, researchers inserted nanoparticles into the emulsions, which they simply shook by hand and machine to break the oil-water bonds and create oil-nanoparticle bonds within minutes. Some of the oil floated to the top, while placing the test tube on a magnet pulled the infused nanotubes to the bottom, leaving clear water in between.

    Best of all, Biswal says, the nanoparticles can be washed with a solvent and reused while the oil can be recovered. The researchers detailed six successful charge-discharge cycles of their compound and suspect it will remain effective for many more.

    Watch: We could clean up oil spills with this reusable sponge

    Biswal’s lab is designing a flow-through reactor to process produced water in bulk and automatically recycle the nanoparticles. That would be valuable for industry and for sites like offshore oil rigs, where treated water could be returned to the ocean, researchers say.

    The research appears in Environmental Science: Water Research & Technology.

    Additional coauthors are from Rice, Shell Oil Products, and Shell Global Solutions.

    Source: Rice University