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Abstract
It is shown that approximately 2 wt% of graphene in the matrix of a unidirectionally-reinforced carbon fiber epoxy composite leads to a significant enhancement in mechanical properties. Particularly, it is found that the axial stiffness of the composites is increased by ∼10 GPa accompanied by an increase in axial strength of 200 MPa. X-ray computed tomography and polarized Raman spectroscopy have demonstrated that the graphene is predominately aligned parallel to the carbon fibers axes. Stress-induced Raman band shifts showed that the confined and self-aligned graphene is subjected to high levels of stress during axial deformation of the composite, with an effective Young's modulus of ∼825 GPa, approaching its theoretical value of 1050 GPa. This behavior has been modeled using the rule of mixtures and shear-lag analysis and it is demonstrated that highly-aligned graphene in a constrained environment between fibers gives significantly better mechanical reinforcement than graphene in conventional polymer-based nanocomposites.
| Original language | English |
|---|---|
| Pages (from-to) | 311-317 |
| Journal | Composites Part A: Applied Science and Manufacturing |
| Volume | 113 |
| Early online date | 26 Jul 2018 |
| DOIs | |
| Publication status | Published - Oct 2018 |
Research Beacons, Institutes and Platforms
- National Graphene Institute
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Dive into the research topics of 'Realizing the theoretical stiffness of graphene in composites through confinement between carbon fibers'. Together they form a unique fingerprint.Projects
- 1 Finished
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Next Generation Multi-Dimensional X-ray Imaging
Withers, P. (PI), Burke, G. (CoI), Cernik, R. (CoI), Haigh, S. (CoI), Lee, P. (CoI) & Lionheart, W. (CoI)
1/02/15 → 31/01/20
Project: Research