Search Menu
Photonics Media Photonics Marketplace Photonics Spectra BioPhotonics EuroPhotonics Vision Spectra Photonics Showcase Photonics ProdSpec Photonics Handbook

Old Polymers Learn New Tricks

Facebook Twitter LinkedIn Email Comments
AMES, Iowa, May 2, 2011 — New tricks to improve the properties of certain organic polymers that mimic the properties of traditional inorganic semiconductors are being investigated by Malika Jeffries-EL, an assistant professor of chemistry at Iowa State University. The new methods could make the polymers very useful in organic solar cells, light-emitting diodes and thin-film transistors.

Conductive polymers date back to the late 1970s, when researchers Alan Heeger, Alan MacDiarmid and Hideki Shirakawa discovered that plastics, with certain arrangements of atoms, can conduct electricity. The three were awarded the 2000 Nobel Prize in chemistry for the discovery.

Jeffries-EL is working with a postdoctoral researcher and nine doctoral students to move the field forward by studying the relationship between polymer structures and the electronic, physical and optical properties of the materials. They also are looking for ways to synthesize the polymers without the use of harsh acids and temperatures by making them soluble in organic solvents.

Malika Jeffries-EL and her Iowa State University research group are studying polymers that can conduct electricity. (Image: Bob Elbert/Iowa State University)

The building blocks of their work are a variety of benzobisazoles, molecules that are well suited for electrical applications because they efficiently transport electrons, are stable at high temperatures and can absorb photons.

And if the polymers are lacking in any of those properties, Jeffries-EL and her research group can do some chemical restructuring.

"With these polymers, if you don't have the properties you need, you can go back and change the wheel," she said. "You can change the chemical synthesis and produce what's missing."

That, she said, doesn't work with silicon and other inorganic materials for semiconductors: "Silicon is silicon. Elements are constant."

The National Science Foundation is supporting Jeffries-EL's polymer research with a five-year, $486,250 Faculty Early Career Development grant. She also has support from the Iowa Power Fund (a state program that supports energy innovation and independence) to apply organic semiconductor technology to solar cells.

"This research is really about fundamental science," Jeffries-EL said. "We're studying the relationships between structure and material properties. Once we have a polymer with a certain set of properties, what can we do?"

She and her research group are turning to the molecules for answers.

"In order to realize the full potential of these materials, they must be engineered at the molecular level, allowing for optimization of materials properties, leading to enhanced performance in a variety of applications," she said. "As an organic chemist, my approach to materials begins with small molecules."

For more information, visit:
May 2011
Alan HeegerAlan MacDiarmidAmericasBasic SciencebenzobisazolesenergyFaculty Early Career Development grantgreen photonicsHideki ShirakawaIowaIowa Power FundIowa State Universitylight sourceslight-emitting diodesMalika Jeffries-ELNational Science FoundationNobel Prize in chemistryopticsorganic polymersorganic solar cellsphotonsResearch & Technologysiliconthin-film transistorsLEDs

view all
Search more than 4000 manufacturers and suppliers of photonics products and services worldwide:

back to top
Facebook Twitter Instagram LinkedIn YouTube RSS
©2021 Photonics Media, 100 West St., Pittsfield, MA, 01201 USA, [email protected]

Photonics Media, Laurin Publishing
x We deliver – right to your inbox. Subscribe FREE to our newsletters.
We use cookies to improve user experience and analyze our website traffic as stated in our Privacy Policy. By using this website, you agree to the use of cookies unless you have disabled them.