Graphene-crosslinked polyurethane block copolymer nanocomposites with enhanced mechanical, electrical, and shape memory properties
Нанокомпозиты блок-сополимера полиуретана, сшитого графеном, с улучшенными механическими, электрическими свойствами и свойствами памяти формы
2013-01-01
SCID: 54.1/zyj2ujsv
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electroactive shape recoverygraphene-crosslinked polyurethanepoly(ε-caprolactone)diolpolyurethane nanocompositesshape memory properties
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Abstract (AI)
Highly flexible, conductive, and shape memory polyurethane nanocomposites were prepared using a robust and fast process. Functionalized graphene sheets were incorporated as crosslinkers in the prepolymer, prepared from a reaction of 4,4′-methylene bis(phenyl isocyanate) and poly(ε-caprolactone)diol. The covalently bonded graphene sheets were homogeneously dispersed in the polymer matrix. In comparison to pristine polyurethane and carbon nanotube-crosslinked polyurethane, the graphene-crosslinked polyurethane composite exhibited higher modulus and breaking stress, and exceptional elongation-at-break. The resulting composite exhibited 97% shape recovery, 95% shape retention, enhanced shape recovery force, and fast electroactive shape recovery rate, thus it could be a promising material for the fabrication of graphene-based actuating devices.
Key Findings
1
A robust and fast process produced flexible, electrically conductive, shape-memory polyurethane nanocomposites using functionalized graphene sheets as covalent crosslinkers.
2
Compared with pristine polyurethane and carbon-nanotube-crosslinked polyurethane, graphene-crosslinked composites showed higher modulus and breaking stress while retaining exceptional elongation-at-break.
3
Graphene sheets were covalently bonded and homogeneously dispersed within the polyurethane matrix formed from methylene bis(phenyl isocyanate) and poly(ε-caprolactone)diol.
4
The combination of mechanical, electrical, and shape-memory performance supports potential use in graphene-based actuating devices.
5
The composite achieved 97% shape recovery and 95% shape retention, together with enhanced shape-recovery force and a fast electroactive recovery rate.
Research Object
graphene-crosslinked polyurethane block copolymer nanocomposites
Research Subject
mechanical, electrical, and shape-memory properties, including modulus, breaking stress, elongation-at-break, shape recovery and retention, recovery force, and electroactive recovery rate
Publication Details
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2013-01-01
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