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Demonstration of Environmentally Stable, Broadband Energy Dissipation via Multiple Metal Cross‐Linked Glycerol Gels

Author(s)
Cazzell, Seth Allen; Duncan, Bradley; Kingsborough, Richard; Holten‐Andersen, Niels
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Abstract
Rapid damping of interfaces experiencing vibrations is critical to the performance of many complex mechanical systems ranging from airplanes to human bodies. Current synthetic materials utilized in vibration damping are limited by either their damping frequency range, tunability, or environmental stability. Here, it is shown how single metal ion cross-linked hydrogels exhibit tunable damping across a large frequency range and multiple metal ion hydrogels exhibit broadband damping within a single material. Additionally, an enhanced resistance to freezing and dehydration is shown with the use of glycerol as a cosolvent. It is expected that material design principles presented here will help advance the development of programmable damping materials better able to meet the demands of sustained operation under broad environmental conditions.
Date issued
2021-02-11
URI
https://hdl.handle.net/1721.1/140287
Department
Massachusetts Institute of Technology. Department of Materials Science and Engineering; Lincoln Laboratory
Journal
Advanced Functional Materials
Publisher
Wiley
Citation
Cazzell, S. A., Duncan, B., Kingsborough, R., Holten-Andersen, N., Demonstration of Environmentally Stable, Broadband Energy Dissipation via Multiple Metal Cross-Linked Glycerol Gels. Adv. Funct. Mater. 2021, 31, 2009118
Version: Author's final manuscript
ISSN
1616-301X
1616-3028

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