Issue 6, 2013

Defect-activated self-assembly of multilayered graphene paper: a mechanically robust architecture with high strength

Abstract

In this work molecular dynamics simulations are carried out to investigate the defect-mediated self-assembly of graphene paper from several layers of graphene sheets with vacancy defects. Tensile and shear deformations are applied to the obtained architectures to investigate both the in-plane and the out-of-plane mechanical properties. The effect of incipient defect coverage is analyzed and super-ductility is observed in the high defect density situation. While the stiffness and strength decrease with the increasing of incipient defect coverage under in-plane deformations, they increase under out-of-plane deformations, which can be attributed to the enhanced defect-induced interlayer cross-linking. Effects of crack-like flaws are also investigated to demonstrate the robustness of this structure. Our results demonstrate that defects, which are sometimes unavoidable and undesirable, can be engineered in a favorable way to provide a new approach for graphene-based self-assembly of vertically aligned architectures with mechanical robustness and high strength.

Graphical abstract: Defect-activated self-assembly of multilayered graphene paper: a mechanically robust architecture with high strength

Supplementary files

Article information

Article type
Paper
Submitted
03 Sep 2012
Accepted
29 Nov 2012
First published
29 Nov 2012

J. Mater. Chem. A, 2013,1, 2002-2010

Defect-activated self-assembly of multilayered graphene paper: a mechanically robust architecture with high strength

L. Xu, N. Wei, X. Xu, Z. Fan and Y. Zheng, J. Mater. Chem. A, 2013, 1, 2002 DOI: 10.1039/C2TA00176D

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