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Home > Press > Aluminum nanoparticles could improve electronic displays

A set of vivid red, green and blue pixels based on aluminum nanostructures are shown in a liquid crystal display (left: schematic, right: digital photograph). 
Credit: American Chemical Society
A set of vivid red, green and blue pixels based on aluminum nanostructures are shown in a liquid crystal display (left: schematic, right: digital photograph).

Credit: American Chemical Society

Abstract:
Whether showing off family photos on smartphones or watching TV shows on laptops, many people look at liquid crystal displays (LCDs) every day. LCDs are continually being improved, but almost all currently use color technology that fades over time. Now, a team reports in ACS Nano that using aluminum nanostructures could provide a vivid, low-cost alternative for producing digital color.

Aluminum nanoparticles could improve electronic displays

Washington, DC | Posted on January 7th, 2016

Conventional color technology used in displays is susceptible to photobleaching, or fading. So researchers have looked toward aluminum nanoparticles that can display colors in electronics, thanks to a property called 'plasmon resonance.' To create plasmonic color devices, researchers group nanostructures into arrays called pixels. Color is generated by scattering light onto the pixels, with different arrangements creating different colors. Aluminum plasmonic pixels are advantageous for use in electronic displays because they are inexpensive and can be made in an ultrasmall size, which can increase image resolution. But these pixels create muted and dull colors. In a recent publication, Stephan Link and colleagues developed a method that allows the red end of the color spectrum to be more vibrant. Now, the same team reports another approach that makes the blue end of the spectrum much more brilliant, too.

The researchers used a three-step design approach to create aluminum nanostructure pixels that exploit 'Fano interference' -- an interaction between the plasmon resonance and the pixel's array structure -- to produce vibrant blue-end colors. Combining their previous research with this new development, the team was able to create pixels with extremely vivid colors across the entire visible spectrum. The researchers then incorporated a set of red, green and blue pixels into a liquid crystal display that could be electrically turned on and off, demonstrating this work's potential use in commercial flat-panel displays.

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The researchers acknowledge funding from the Robert A. Welch Foundation, the Office of Naval Research, Rice University, the University of New Mexico and the National Science Foundation.

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About American Chemical Society
The American Chemical Society is a nonprofit organization chartered by the U.S. Congress. With more than 158,000 members, ACS is the world's 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.

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Contacts:
Michael Bernstein

202-872-6042

Stephan Link, Ph.D.
Rice University
6100 Main Street
Houston, TX 77005
Phone: 713-348-4561

Copyright © American Chemical Society

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