TY - JOUR
T1 - Multi-scale structure-mechanical property relations of graphene-based layer materials
AU - Liu, Jingran
AU - Qin, Huasong
AU - Liu, Yilun
N1 - Publisher Copyright:
© 2021 by the authors.
PY - 2021/8/2
Y1 - 2021/8/2
N2 - Pristine graphene is one of the strongest materials known in the world, and may play important roles in structural and functional materials. In order to utilize the extraordinary mechanical properties in practical engineering structures, graphene should be assembled into macroscopic structures such as graphene-based papers, fibers, foams, etc. However, the mechanical properties of graphene-based materials such as Young’s modulus and strength are 1-2 orders lower than those of pristine monolayer graphene. Many efforts have been made to unveil the multi-scale structure- property relations of graphene-based materials with hierarchical structures spanning the nanoscale to macroscale, and significant achievements have been obtained to improve the mechanical performance of graphene-based materials through composition and structure optimization across multi-scale. This review aims at summarizing the currently theoretical, simulation, and experimental efforts devoted to the multi-scale structure-property relation of graphene-based layer materials including defective monolayer graphene, nacre-like and laminar nanostructures of multilayer graphene, graphene-based papers, fibers, aerogels, and graphene/polymer composites. The mechanisms of mechanical property degradation across the multi-scale are discussed, based on which some multi-scale optimization strategies are presented to further improve the mechanical properties of graphenebased layer materials. We expect that this review can provide useful insights into the continuous improvement of mechanical properties of graphene-based layer materials.
AB - Pristine graphene is one of the strongest materials known in the world, and may play important roles in structural and functional materials. In order to utilize the extraordinary mechanical properties in practical engineering structures, graphene should be assembled into macroscopic structures such as graphene-based papers, fibers, foams, etc. However, the mechanical properties of graphene-based materials such as Young’s modulus and strength are 1-2 orders lower than those of pristine monolayer graphene. Many efforts have been made to unveil the multi-scale structure- property relations of graphene-based materials with hierarchical structures spanning the nanoscale to macroscale, and significant achievements have been obtained to improve the mechanical performance of graphene-based materials through composition and structure optimization across multi-scale. This review aims at summarizing the currently theoretical, simulation, and experimental efforts devoted to the multi-scale structure-property relation of graphene-based layer materials including defective monolayer graphene, nacre-like and laminar nanostructures of multilayer graphene, graphene-based papers, fibers, aerogels, and graphene/polymer composites. The mechanisms of mechanical property degradation across the multi-scale are discussed, based on which some multi-scale optimization strategies are presented to further improve the mechanical properties of graphenebased layer materials. We expect that this review can provide useful insights into the continuous improvement of mechanical properties of graphene-based layer materials.
KW - Graphene-based layer materials
KW - Hierarchical structures
KW - Mechanical behaviors
KW - Multi-scale optimization
KW - Multi-scale structure-property relations
UR - https://www.scopus.com/pages/publications/85113671118
U2 - 10.3390/ma14164757
DO - 10.3390/ma14164757
M3 - 文章
AN - SCOPUS:85113671118
SN - 1996-1944
VL - 14
JO - Materials
JF - Materials
IS - 16
M1 - 4757
ER -