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New conductive coating may unlock biometric and wearable technology of the future

Date:
March 9, 2018
Source:
Texas A&M University
Summary:
A team of researchers have developed a mechanically robust conductive coating that can maintain performance under heavy stretching and bending.
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A team of researchers from the College of Engineering at Texas A&M University have developed a mechanically robust conductive coating that can maintain performance under heavy stretching and bending.

Stretchable, bendable and foldable electronics are crucial for the development of emerging technologies like adaptive displays, artificial skin, and biometric and wearable devices. This presents a unique challenge of balancing electronic performance and mechanical flexibility. The difficulty lies in finding a material that can withstand a wide array of deformations, like stretching, bending and twisting, all while maintaining electrical conductivity. Adding to the challenge is the need for this conductivity to be engineered into a variety of different surfaces, such as cloth, fiber, glass or plastic.

A collaborative team from the Artie McFerrin Department of Chemical Engineering and the Department of Materials Science and Engineering led by Dr. Jodie Lutkenhaus , associate professor and holder of the William and Ruth Neely Faculty Fellowship, has solved this problem through the development of a new surface-agnostic stretchable, bendable and foldable conductive coating, opening the door for a wide variety of flexible electronics.

Two-dimensional metal carbides (MXenes) were chosen as the main focus of the research as previous research has shown them to have a metallic-like conductivity. The previous research on MXenes has focused primarily on the materials in the form of sheets. Although these sheets have the desired conductivity, they are not stretchable and their integration into different surfaces has not been shown.

Rather than using MXene sheets, the Texas A&M research team created MXene coatings through the sequential adsorption of negatively charged MXene sheets and positively charged polyelectrolytes using an aqueous assembly process known as layer-by-layer (LbL) assembly. The results of this process, described in depth in the latest issue of Science Advances, demonstrate that MXene multilayer coatings that can undergo large-scale mechanical deformation while maintaining a high level of conductivity. The team has also successfully deposited the MXene multilayer coatings onto flexible polymer sheet, stretchable silicones, nylon fiber, glass and silicon.

This research was supported by the National Science Foundation.


Story Source:

Materials provided by Texas A&M University. Note: Content may be edited for style and length.


Journal Reference:

  1. By Hyosung An, et al. Surface-agnostic highly stretchable and bendable conductive MXene multilayers. Science Advances, Mar 2nd, 2018 DOI: 10.1126/sciadv.aaq0118

Cite This Page:

Texas A&M University. "New conductive coating may unlock biometric and wearable technology of the future." ScienceDaily. ScienceDaily, 9 March 2018. <www.sciencedaily.com/releases/2018/03/180309170615.htm>.
Texas A&M University. (2018, March 9). New conductive coating may unlock biometric and wearable technology of the future. ScienceDaily. Retrieved April 25, 2024 from www.sciencedaily.com/releases/2018/03/180309170615.htm
Texas A&M University. "New conductive coating may unlock biometric and wearable technology of the future." ScienceDaily. www.sciencedaily.com/releases/2018/03/180309170615.htm (accessed April 25, 2024).

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