With a hexagonal monolayer network of carbon atoms, graphene has demonstrated exceptional electrical 22\ud and mechanical properties. In this work, the fracture of graphene sheets with Stone–Wales type defects and vacancies were investigated using molecular dynamics simulations at different temperatures. The initiation of defects via bond rotation was also investigated. The results indicate that the defects and vacancies can cause significant strength loss in graphene. The fracture strength of graphene is also affected by temperature and loading directions. The simulation results were compared with the prediction from the quantized fracture mechanics
Crack propagation in a defected graphene sheet is investigated at finite temperature using molecular...
Abstract With a monolayer honeycomb-lattice of sp2-hybridized carbon atoms, graphene has demonstrate...
We present molecular dynamics simulations of monolayer graphene under uniaxial tensile loading. The ...
Low-dimensional materials such as graphene exhibit superior electrical, mechanical and thermal prope...
Despite the unique occurrences of structural defects in graphene synthesis, the fracture mechanism o...
AbstractGraphene is the strongest material but its performance is significantly weakened by vacancy ...
Graphene is the strongest material but its performance is significantly weakened by vacancy defects....
AbstractGraphene is the strongest material but its performance is significantly weakened by vacancy ...
In this study, the mechanical and thermal properties of graphene were systematically investigated us...
Graphene is a flat monolayer of carbon atoms arranged in a two-dimensional hexagonal lattice. It is ...
Different types of defects can be introduced into graphene during material synthesis, and significan...
Different types of defects can be introduced into graphene during material synthesis, and significan...
Abstract A molecular dynamics (MD) simulation to assess the effect of crack length on the ultimate t...
Molecular dynamic simulation method has been employed to consider the mechanical properties of prist...
With a monolayer honeycomb-lattice of sp2-hybridized carbon atoms, graphene has demonstrated excepti...
Crack propagation in a defected graphene sheet is investigated at finite temperature using molecular...
Abstract With a monolayer honeycomb-lattice of sp2-hybridized carbon atoms, graphene has demonstrate...
We present molecular dynamics simulations of monolayer graphene under uniaxial tensile loading. The ...
Low-dimensional materials such as graphene exhibit superior electrical, mechanical and thermal prope...
Despite the unique occurrences of structural defects in graphene synthesis, the fracture mechanism o...
AbstractGraphene is the strongest material but its performance is significantly weakened by vacancy ...
Graphene is the strongest material but its performance is significantly weakened by vacancy defects....
AbstractGraphene is the strongest material but its performance is significantly weakened by vacancy ...
In this study, the mechanical and thermal properties of graphene were systematically investigated us...
Graphene is a flat monolayer of carbon atoms arranged in a two-dimensional hexagonal lattice. It is ...
Different types of defects can be introduced into graphene during material synthesis, and significan...
Different types of defects can be introduced into graphene during material synthesis, and significan...
Abstract A molecular dynamics (MD) simulation to assess the effect of crack length on the ultimate t...
Molecular dynamic simulation method has been employed to consider the mechanical properties of prist...
With a monolayer honeycomb-lattice of sp2-hybridized carbon atoms, graphene has demonstrated excepti...
Crack propagation in a defected graphene sheet is investigated at finite temperature using molecular...
Abstract With a monolayer honeycomb-lattice of sp2-hybridized carbon atoms, graphene has demonstrate...
We present molecular dynamics simulations of monolayer graphene under uniaxial tensile loading. The ...