Engineering foam skeletons with multilayered graphene oxide coatings for enhanced energy dissipation

This work shows how to improve the energy dissipation of open-cell polyurethane (PU) foams by creating multilayered graphene oxide (GO) nano-architectures onto the struts via a modified dip-coating process. Pristine PU foams are alternately dip-coated with GO coatings and water-based polyurethane di...

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Veröffentlicht in:Composites. Part A, Applied science and manufacturing Applied science and manufacturing, 2020-10, Vol.137, p.106035, Article 106035
Hauptverfasser: Lu, Wenjiang, Qin, Faxiang, Zhang, Qicheng, Remillat, Chrystel, Wang, Huan, Scarpa, Fabrizio, Peng, Hua-Xin
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Sprache:eng
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Zusammenfassung:This work shows how to improve the energy dissipation of open-cell polyurethane (PU) foams by creating multilayered graphene oxide (GO) nano-architectures onto the struts via a modified dip-coating process. Pristine PU foams are alternately dip-coated with GO coatings and water-based polyurethane dispersions (PUD) for a given number of times. The GO coating morphologies are carefully adjusted and the inner energy dissipation mechanisms reach the optimized interfacial frictions of GO-PU and GO-GO. Along with the synergistic effect of the multiple interpenetrating structure of GO/PU coating phases, these engineered composite foams with extremely low GO content (~0.12 wt%) afford a significant increase of quasi-static energy dissipation (52%) and dynamic damping (76%) when compared with counterpart foams coated with the same number of pure PUD layers. The specific Young’s modulus and strength of the designed foams also show remarkable enhancements of 310% and 490% respectively compared with those of pristine PU foams.
ISSN:1359-835X
1878-5840
DOI:10.1016/j.compositesa.2020.106035