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Bioinspired Design of Strong, Tough, and Thermally Stable Polymeric Materials via Nanoconfinement.
Song, Pingan; Dai, Jinfeng; Chen, Guorong; Yu, Youming; Fang, Zhengping; Lei, Weiwei; Fu, Shenyuan; Wang, Hao; Chen, Zhi-Gang.
Afiliação
  • Song P; Department of Materials , Zhejiang A & F University , Hangzhou , 311300 , China.
  • Dai J; Centre for Future Materials , University of Southern Queensland , Toowoomba , QLD 4350 , Australia.
  • Chen G; Department of Materials , Zhejiang A & F University , Hangzhou , 311300 , China.
  • Yu Y; Research Centre of Nanoscience and Nanotechnology , Shanghai University , Shanghai , 200444 , China.
  • Fang Z; Department of Materials , Zhejiang A & F University , Hangzhou , 311300 , China.
  • Lei W; Laboratory of Polymer Materials and Engineering, Ningbo Institute of Technology , Zhejiang University , Ningbo , 315100 , China.
  • Fu S; Institute for Frontier Materials, Deakin University , Locked Bag 20000 , Geelong , VIC 3220 , Australia.
  • Wang H; Department of Materials , Zhejiang A & F University , Hangzhou , 311300 , China.
  • Chen ZG; Centre for Future Materials , University of Southern Queensland , Toowoomba , QLD 4350 , Australia.
ACS Nano ; 12(9): 9266-9278, 2018 09 25.
Article em En | MEDLINE | ID: mdl-30179445
The combination of high strength, great toughness, and high heat resistance for polymeric materials is a vital factor for their practical applications. Unfortunately, until now it has remained a major challenge to achieve this performance portfolio because the mechanisms of strength and toughness are mutually exclusive. In the natural world, spider silk features the combination of high strength, great toughness, and excellent thermal stability, which are governed by the nanoconfinement of hydrogen-bonded ß-sheets. Here, we report a facile bioinspired methodology for fabricating advanced polymer composite films with a high tensile strength of 152.8 MPa, a high stiffness of 4.35 GPa, and a tensile toughness of 30.3 MJ/m3 in addition to high thermal stability (69 °C higher than that of the polymer matrix) only by adding 2.0 wt % of artificial ß-sheets. The mechanical and thermostable performance portfolio is superior to that of its counterparts developed to date because of the nanoconfinement and hydrogen-bond cross-linking effects of artificial ß-sheets. Our study offers a facile biomimetic strategy for the design of integrated mechanically robust and thermostable polymer materials, which hold promise for many applications in electrical devices and tissue engineering fields.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Polímeros / Temperatura / Nanoestruturas Idioma: En Revista: ACS Nano Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Polímeros / Temperatura / Nanoestruturas Idioma: En Revista: ACS Nano Ano de publicação: 2018 Tipo de documento: Article