Bioinspired, Multiscale Reinforced Composites with Exceptionally High Strength and Toughness.
basic_science · Level V
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- Record sourced from PubMed, PMID 30088938.
- Also identified by DOI 10.1021/acs.nanolett.8b02459.
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Abstract
Nature's multiscale reinforcing mechanisms in fabricating composite armors, such as seashells, provide lessons for engineering materials design and manufacturing. However, it is still a challenge to simultaneously add both micro- and nanoreinforcements in a matrix material since nano-fillers tend to agglomerate, decreasing their reinforcing effects. In this study, we report a new type of micro/nano hybrid filler, synthesized by an unconventional cotton aided method, which has B<sub>4</sub>C microplatelet as the core and radially aligned B<sub>4</sub>C nanowires as the shell. To enhance the bonding between the B<sub>4</sub>C fillers and epoxy, the B<sub>4</sub>C micro/nano-fillers were coated with a layer of polyaniline (PANI). With a low concentration of the PANI functionalized B<sub>4</sub>C micro/nano-fillers (1 wt %), this B<sub>4</sub>C/epoxy composite exhibited an exceptional combination of mechanical properties in terms of elastic modulus (∼3.47 GPa), toughness (2026.3 kJ/m<sup>3</sup>), and fracture strain (>3.6%). An analytical mechanics model was established to show that such multiscale reinforcement design remarkably enhanced the load carrying efficiency of the B<sub>4</sub>C fillers, leading to the overall improved mechanical performance of the composites. This new design concept opens up a new path for developing lightweight, yet high-strength and tough materials with multiscale reinforcing configurations.