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Available Patents & Technologies

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Case ID:
FY15-039

Reversible Thermal-Stiffening in Polymer Nanocomposites

Case ID:
FY15-039
Web Published:
7/30/2018
Description:

Miscible polymer blends with different glass transition temperatures (Tg) are known to create confined interphases between glassy and mobile chains. Here, we show that nanoparticles adsorbed with a high-Tg polymer, poly(methyl methacrylate), and dispersed in a low-Tg matrix polymer, poly(ethylene oxide), exhibit a liquid-to-solid transition at temperatures above Tg’s of both polymers. The mechanical adaptivity of nanocomposites to temperature underlies the existence of dynamically asymmetric bound layers on nanoparticles and more importantly reveals their impact on macroscopic mechanical response of composites. The unusual reversible stiffening behavior sets these materials apart from conventional polymer composites that soften upon heating. The presented stiffening mechanism in polymer nanocomposites can be used in applications for flexible electronics or mechanically induced actuators responding to environmental changes like temperature or magnetic fields.

Patent Information:
Title App Type Country Serial No. Patent No. File Date Issued Date Expire Date
Direct Link:
https://stevens.testtechnologypublisher.com/technology/11238
FY15-039
Category(s):
Materials / Manufacturing & Processes
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For Information, Contact:
David Zimmerman
Director of Technology Commercialization
Stevens Institute of Technogology
dzimmer3@stevens.edu
Inventors:
  • Pinar Akcora
  • Erkan Senses
Keywords:

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