Multifunctionality through Embedding Patterned Nanostructures in High‐Performance Composites

Author:

Kaynan Ozge1,Hosseini Ehsan2,Zakertabrizi Mohammad2,Motta De Castro Emile2,Pérez Lisa M.3,Jarrahbashi Dorrin2,Asadi Amir14ORCID

Affiliation:

1. Department of Materials Science and Engineering Texas A&M University College Station TX 77843‐3367 USA

2. J. Mike Walker’ 66 Department of Mechanical Engineering Texas A&M University College Station TX 77843 USA

3. High Performance Research Computing Texas A&M University MS 3361 College Station TX 77843‐3361 USA

4. Department of Engineering Technology and Industrial Distribution Texas A&M University College Station TX 77843‐3367 USA

Abstract

AbstractDespite being a pillar of high‐performance materials in industry, manufacturing carbon fiber composites with simultaneously enhanced multifunctionality and structural properties has remained elusive due to the lack of practical bottom‐up approaches with control over nanoscale interactions. Guided by the droplet's internal currents and amphiphilicity of nanomaterials, herein, a programmable spray coating is introduced for the deposition of multiple nanomaterials with tailorable patterns in composite.  It is shown that such patterns regulate the formation of interfaces, damage containment, and electrical‐thermal conductivity of the composites, which is absent in conventional manufacturing that primarily rely on incorporating nanomaterials to achieve specific functionalities. Molecular dynamics simulations show that increasing the hydrophilicity of the hybrid nanomaterials, which is synchronous with shifting patterns from disk to ring, improves the interactions between the carbon surfaces and epoxy at the interfaces,manifested in enhanced interlaminar and flexural performance. Transitioning from ring to disk creates a larger interconnected network  leading to improved thermal and electrical properties without penalty in mechanical properties. This novel approach introduces a new design , where the mechanical and multifunctional performance is controlled by the shape of the deposited patterns, thus eliminating the trade‐off between properties that are considered paradoxical in today's manufacturing of hierarchical composites.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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