Rediscovery of nylon upgraded by interactive biorenewable nano-fillers

Inorganic nanomaterials can only stiffen nylon with a significant loss of its toughness and ductility. Furthermore, they are not eco-friendly. In this study, the facile tuning of nylon's mechanical properties from stiff to tough was achieved, using cellulose nanocrystals (CNC) and chitosan nano...

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Veröffentlicht in:Nanoscale 2020-01, Vol.12 (4), p.2393-2405
Hauptverfasser: Hao, Lam Tan, Eom, Youngho, Tran, Thang Hong, Koo, Jun Mo, Jegal, Jonggeon, Hwang, Sung Yeon, Oh, Dongyeop X, Park, Jeyoung
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container_end_page 2405
container_issue 4
container_start_page 2393
container_title Nanoscale
container_volume 12
creator Hao, Lam Tan
Eom, Youngho
Tran, Thang Hong
Koo, Jun Mo
Jegal, Jonggeon
Hwang, Sung Yeon
Oh, Dongyeop X
Park, Jeyoung
description Inorganic nanomaterials can only stiffen nylon with a significant loss of its toughness and ductility. Furthermore, they are not eco-friendly. In this study, the facile tuning of nylon's mechanical properties from stiff to tough was achieved, using cellulose nanocrystals (CNC) and chitosan nanowhiskers (CSW) as biorenewable fillers. The interaction between the matrix and filler was controlled by varying the types of fillers and the employed processing methods, including in situ interfacial polymerization and post-solution blending. Particularly with CSW, the in situ-incorporated filler with a 0.4 wt% loading strengthened nylon and led to a 1.9-fold increase in its Young's modulus (2.6 GPa) and a 1.7-fold increase in its ultimate tensile strength (106 MPa), whereas the solution-blended filler with a 0.3 wt% loading toughened the polymer with a 2.1-fold increase (104 MJ m ). Compared with inorganic nanocomposites, these interactive biofiller-nanocomposites are unrivaled in their reinforcing performance when normalized by filler content. This stiff-to-tough tuning trend is more pronounced in the CSW system than in the CNC system. Covalent polymer grafts on the amine surface of CSW enhanced interfacial interactions in the in situ method, whereas its cationic surface charges plasticized the polymer matrix in the blending method. This proteinaceous composite-mimicking all-organic nylon nanocomposite opens new possibilities in the field of reinforced engineering plastics.
doi_str_mv 10.1039/c9nr08091k
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Furthermore, they are not eco-friendly. In this study, the facile tuning of nylon's mechanical properties from stiff to tough was achieved, using cellulose nanocrystals (CNC) and chitosan nanowhiskers (CSW) as biorenewable fillers. The interaction between the matrix and filler was controlled by varying the types of fillers and the employed processing methods, including in situ interfacial polymerization and post-solution blending. Particularly with CSW, the in situ-incorporated filler with a 0.4 wt% loading strengthened nylon and led to a 1.9-fold increase in its Young's modulus (2.6 GPa) and a 1.7-fold increase in its ultimate tensile strength (106 MPa), whereas the solution-blended filler with a 0.3 wt% loading toughened the polymer with a 2.1-fold increase (104 MJ m ). Compared with inorganic nanocomposites, these interactive biofiller-nanocomposites are unrivaled in their reinforcing performance when normalized by filler content. This stiff-to-tough tuning trend is more pronounced in the CSW system than in the CNC system. Covalent polymer grafts on the amine surface of CSW enhanced interfacial interactions in the in situ method, whereas its cationic surface charges plasticized the polymer matrix in the blending method. 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source Royal Society Of Chemistry Journals 2008-
subjects Chitosan
Fillers
Mechanical properties
Modulus of elasticity
Nanocomposites
Nanocrystals
Nanomaterials
Polymers
Solution blending
Tuning
Ultimate tensile strength
title Rediscovery of nylon upgraded by interactive biorenewable nano-fillers
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