Enhancing Composite Toughness Through Hierarchical Interphase Formation

被引:11
作者
Gupta, Sumit [1 ]
Sohail, Tanvir [2 ]
Checa, Marti [3 ]
Rohewal, Sargun S. [1 ]
Toomey, Michael D. [1 ]
Kanbargi, Nihal [1 ]
Damron, Joshua T. [1 ]
Collins, Liam [3 ]
Kearney, Logan T. [1 ]
Naskar, Amit K. [1 ]
Bowland, Christopher C. [1 ]
机构
[1] Oak Ridge Natl Lab, Chem Sci Div, Carbon & Composites Grp, Oak Ridge, TN 37830 USA
[2] Oak Ridge Natl Lab, Natl Ctr Computat Sci, Adv Comp Chem & Mat Grp, Oak Ridge, TN 37830 USA
[3] Oak Ridge Natl Lab, Ctr Nanophase Mat Sci, Funct Atom Force Microscope Grp, Oak Ridge, TN 37830 USA
关键词
fiber-matrix adhesion; fiber-matrix interphase; fiber-reinforced composites; hierarchical architecture; nanofiber scaffold; REINFORCED POLYMER COMPOSITES; GLASS-FIBER; INTERFACIAL PROPERTIES; MECHANICAL-PROPERTIES; FRACTURE-TOUGHNESS; GRAPHENE OXIDE; CARBON; POLYACRYLONITRILE; STRENGTH; STABILIZATION;
D O I
10.1002/advs.202305642
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
High strength and ductility are highly desired in fiber-reinforced composites, yet achieving both simultaneously remains elusive. A hierarchical architecture is developed utilizing high aspect ratio chemically transformable thermoplastic nanofibers that form covalent bonding with the matrix to toughen the fiber-matrix interphase. The nanoscale fibers are electrospun on the micrometer-scale reinforcing carbon fiber, creating a physically intertwined, randomly oriented scaffold. Unlike conventional covalent bonding of matrix molecules with reinforcing fibers, here, the nanofiber scaffold is utilized - interacting non-covalently with core fiber but bridging covalently with polymer matrix - to create a high volume fraction of immobilized matrix or interphase around core reinforcing elements. This mechanism enables efficient fiber-matrix stress transfer and enhances composite toughness. Molecular dynamics simulation reveals enhancement of the fiber-matrix adhesion facilitated by nanofiber-aided hierarchical bonding with the matrix. The elastic modulus contours of interphase regions obtained from atomic force microscopy clearly indicate the formation of stiffer interphase. These nanoengineered composites exhibit a approximate to 60% and approximate to 100% improved in-plane shear strength and toughness, respectively. This approach opens a new avenue for manufacturing toughened high-performance composites. High strength and ductility are highly desired in fiber-reinforced composites, yet achieving both simultaneously remains elusive. A hierarchical architecture is developed utilizing high aspect ratio chemically transformable thermoplastic nanofibers that form covalent bonding with the matrix to toughen the fiber-matrix interphase. This approach is practical yet straightforward and can potentially produce composites with superior fiber-matrix interfacial properties. image
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页数:16
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