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Designing Butterfly-Inspired Architecture in Self-Assembled Hybrid Composites for Synergistic Structural Thermal
Nello D Sansone1, Rafaela Aguiar1, Nichole Cheung1
1Multifunctional Composites Manufacturing Laboratory (MCML), Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, Canada.
Abstract:
Increasingly strict environmental regulations and sustainability goals are driving global adoption of lightweight materials in advanced transportation and defense applications. Inspired by nature's unparalleled engineering, this work employs butterfly-hierarchical architectures to develop hybrid composites that emulate the synergy-induced multifunctional performance of natural materials. Specifically, these composites are reinforced with hierarchical fibrous assemblies comprised of nano-sized graphene nanoplatelets (GnPs) covalently bonded onto micro-sized glass fibers (GFs). In detail, this work showcases a novel approach to control the in situ self-assembly behavior of these reinforcements, achieved by tailoring the GFs' surface chemistry through functionalization, to maximize the density of covalently-bonded GnPs. Compared to the current industrial substitute for metallic structural components, the developed hybrid composites are tailorable to achieve improvements up to 29%, 116%, and 109% in specific tensile strength, flexural strength, and impact strength, respectively, as well as 22%, 42%, and 110% in thermal conductivity, thermal management performance, and processability, respectively, with an overall 18% weight-reduction. These advancements stem from the detailed structure-property designs, spanning across multiple length scales, encompassing crystal polymorphism, fiber alignment, and distribution, imparting a fundamental understanding of how to tune material performance to meet stringent requirements. Ultimately, these cost-effective, industry-ready butterfly-inspired hybrid composites can produce lightweight, multifunctional components, demonstrating the potential of hierarchical architecture in advancing sustainable engineering solutions for a greener future.
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