FOR IMMEDIATE RELEASE聽|聽March 23, 2015

Kavli Lecture: Mimicking nature鈥檚 chemistry to solve global environmental problems

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DENVER, March 23, 2015 鈥� What many people might call the daily laboratory grind Theodore Betley, Ph.D., calls play. As a student, he developed a passion for lab work that could now pay off for the rest of the world. Today, he will present pioneering work that could help turn greenhouse gases into useful products during 鈥淭he Kavli Foundation Emerging Leader in Chemistry Lecture鈥� at the 249th National Meeting & Exposition of the American Chemical 中国365bet中文官网 (ACS).

ACS, the world鈥檚 largest scientific society, is holding the meeting here through Thursday. It features nearly 11,000 presentations on a wide range of science topics.

鈥淥ur goal is to answer the questions: How do you take the sea of gases that makes up our atmosphere and convert that into liquid fuels?鈥� Betley says. 鈥淥r how do you remediate greenhouse gases and turn them into something usable for the chemical industry?鈥�

The key to answering these big-picture questions and others is getting a better grasp on how nature works, says Betley, who is a professor of inorganic chemistry at Harvard University.

鈥淣ature has evolved over billions of years to convert nitrogen from the atmosphere into fertilizer or to harness solar energy to split water into oxygen and protons and electrons,鈥� he explains. 鈥淎s chemists, we鈥檙e trying to catch up in order to do those transformations ourselves.鈥�

Inorganic chemists design new catalysts that can spur such transformations along. But it鈥檚 not an easy task. Betley says the field鈥檚 top scientists in the 1960s started creating catalytic clusters that copy nature鈥檚 strategy, relying on several underdog metals rather than just one heavy hitter to get a reaction going. 聽

Betley鈥檚 lab is now at the forefront of such efforts. They鈥檝e developed novel materials that are extremely efficient at prompting reactions to take place in the lab. Harnessing the ability to drive and control these reactions could help provide new solutions for reducing levels of greenhouse gases that contribute to global warming. The reactions could remove those gases from the air and turn them into chemical products in high demand that industry now gets in less sustainable ways.

Betley鈥檚 path toward this potential turning point in the field started when he was an undergraduate student, he says. Through a series of internships in various labs, he developed a near-compulsive desire to understand chemical reactions on a fundamental level.

鈥淲hat I discovered in my first interactions in the lab was just a passion for the minutiae,鈥� he says. 鈥淚 didn鈥檛 have one of those defining moments as a kid when I set my barn on fire and said, 鈥楬oly smokes 鈥� I need to learn more about combustion.鈥� To be honest, I think I entered undergraduate studies being very uncertain about what I wanted to do.鈥�

But by the time he completed his degree in chemical engineering, Betley knew there were provocative questions in inorganic chemistry that he wanted to answer, so he went to graduate school. Now, he鈥檚 chipping away at those questions and turning them into novel solutions.

Betley will present his talk Monday, March 23, at the Colorado Convention Center, Bellco Theater, 4-5 p.m. (Mountain time).

He has received funding from the , the , the and the .

The Kavli lecture series is a result of a collaboration between ACS and , an internationally recognized philanthropic organization known for its support of basic scientific innovation.

The American Chemical 中国365bet中文官网 is a nonprofit organization chartered by the U.S. Congress. With more than 158,000 members, ACS is the world鈥檚 largest scientific society and a global leader in providing access to chemistry-related research through its multiple databases, peer-reviewed journals and scientific conferences. Its main offices are in Washington, D.C., and Columbus, Ohio.

To automatically receive press releases from the American Chemical 中国365bet中文官网, contact [email protected].

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Theodore Betley, Ph.D., will present his pioneering work on catalysis today.
Credit:Harvard University
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