Bio-inspired hydrogen-bond cross-link strategy toward strong and tough polymeric materials


Autoria(s): Song, Pingan; Xu, Zhinguang; Lu, Yuan; Guo, Qipeng
Data(s)

23/06/2015

Resumo

It remains a huge challenge to create advanced polymeric materials combining high strength, great toughness, and biodegradability so far. Despite enhanced strength and stiffness, biomimetic materials and polymer nanocomposites suffer notably reduced extensibility and toughness when compared to polymer bulk. Silk displays superior strength and toughness via hydrogen bonds (H-bonds) assembly, while cuticles of mussels gain high hardness and toughness via metal complexation cross-linking. Here, we propose a H-bonds cross-linking strategy that can simultaneously strikingly enhance strength, modulus, toughness, and hardness relative to polymer bulk. The H-bond cross-linked poly(vinyl alcohol) exhibits high yield strength (140 MPa), reduced modulus (22.5 GPa) in nanoindention tests, hardness (0.5 GPa), and great extensibility (40%). More importantly, there exist semiquantitive linear relationships between the number of effective H-bond and macroscale properties. This work suggests a promising methodology of designing advanced materials with exceptional mechanical by adding low amounts (1.0 wt %) of small molecules multiamines serving as H-bond cross-linkers.

Identificador

http://hdl.handle.net/10536/DRO/DU:30074930

Idioma(s)

eng

Publicador

American Chemical Society

Relação

http://dro.deakin.edu.au/eserv/DU:30074930/song-bioinspired-2015.pdf

http://www.dx.doi.org/10.1021/acs.macromol.5b00673

Direitos

2015, American Chemical Society

Palavras-Chave #Science & Technology #Physical Sciences #Polymer Science #SPIDER SILK FIBRILS #SPIDER SILK FIBRILS #STRENGTH #BEHAVIOR #NANOCONFINEMENT #NANOCOMPOSITES
Tipo

Journal Article