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Pulsed lasers in liquids speed up hunt for effective catalysts

08.02.21 | University of Rochester

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Chemical catalysts are the change agents behind the production of just about everything we use in our daily lives, from plastics to prescription drugs. When the right catalysts are mixed with the right chemical compounds, molecules that would otherwise take years to interact do so in mere seconds.

However, developing even one catalyst material to trigger this precise choreography of atoms can take months, even years, when using traditional wet chemistry procedures that use only chemical reactions, often in the liquid phase, to grow nanoparticles.

University of Rochester researchers say there is a way to shorten that process dramatically—by instead using pulsed lasers in liquids to quickly create carefully tuned, systematic arrays of nanoparticles that can be easily compared and tested for use as catalysts.

The process is described in a Chemical Reviews article by Astrid Müller , an assistant professor of chemical engineering at the University of Rochester who has adapted the technique for her work on sustainable energy solutions. Three PhD students in her lab—coauthors Ryland Forsythe, Connor Cox, and Madeleine Wilsey—conducted an exhaustive review of almost 600 previous papers involving the use of pulsed lasers in liquids. As a result, their article is the most comprehensive, up-to-date survey of a technology that was first developed in 1987.

Pulsed lasers in liquids an ‘indispensable tool’ for discovering catalysts

So how does pulsed-laser-in-liquid synthesis work?

The pulsed-laser-in-liquids technique offers multiple advantages over traditional wet-lab synthesis of nanomaterials. According to Müller:

“These advantages make this an indispensable as a tool for discovery,” says Müller, whose background includes work in lasers, materials, and electrocatalysis. “You often have people who know lasers and materials, or maybe electrocatalysis and materials, but you very rarely get someone with expertise in all three.”

She says, “This is what compelled us to write this paper, because the Müller group can bring together the perspectives of all three fields.”

While working as a staff scientist at Caltech, Müller pioneered an adaption of the laser-in-liquids technique to prepare nonprecious water-splitting electrocatalysts that liberate oxygen from water to produce clean hydrogen. At Rochester, the Müller group expands on her expertise to study laser-made electrocatalysts as a way to turn climate-damaging carbon dioxide (CO2) into a closed cycle of useful liquid fuels, such as methanol or ethanol.

“If you were to burn these fuels again, you make CO2 again, so you go round and round. The carbon always stays within the cycle, and does not contribute to more climate change,” Müller says. “For that to work we need catalysts, and no one knows yet what those catalysts would be—what would work and why, and why other catalysts don’t work.”

Hence her interest in using pulsed-laser-in-liquid synthesis to accelerate the process. “It is hugely important because we can’t just sit and hope for the best with climate change; we need to work on successor technologies now,” she says.

So far, pulsed-laser-in-liquid synthesis has had only limited commercial use. The start-up cost of investing in laser technology is a stumbling block for many companies, Müller says. “But that will change as this method gets more and more traction,” she believes.

Thanks to Müller’s lab, pulsed-laser-in-liquids synthesis is certainly getting more attention. Their paper has become a catalyst of its own by being downloaded more than 2,400 times.

Chemical Reviews

https://pubs.acs.org/doi/full/10.1021/acs.chemrev.0c01069

Literature review

Not applicable

Pulsed Laser in Liquids Made Nanomaterials for Catalysis

2-Jun-2021

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APA:
University of Rochester. (2021, August 2). Pulsed lasers in liquids speed up hunt for effective catalysts. Brightsurf News. https://www.brightsurf.com/news/8Y4WVZYL/pulsed-lasers-in-liquids-speed-up-hunt-for-effective-catalysts.html
MLA:
"Pulsed lasers in liquids speed up hunt for effective catalysts." Brightsurf News, Aug. 2 2021, https://www.brightsurf.com/news/8Y4WVZYL/pulsed-lasers-in-liquids-speed-up-hunt-for-effective-catalysts.html.