In this paper, a simple and effective experimental approach has been used to extract the mechanical properties of suspended nanomechanical graphene devices using atomic force microscopy (AFM). The main objective of this work is to study the deflection behaviour of graphene devices as a function of layer number (1–5 layers) and anchor geometry which has not been widely investigated so far. Elastic and nonlinear responses of the devices were obtained using AFM nanoindentation. The estimated linear (2.5 N m−1 to 7.3 N m−1), nonlinear spring constants (1 × 1014 N m−3 to 15 × 1014 N m−3) and pretension (0.79 N m−1 to 2.3 N m−1) for the monolayer (3.35 Å) to five layer (16.75 Å) graphene devices of diameter 3.8 µm show an obvious increasing trend...
10.1088/0960-1317/22/10/105024Journal of Micromechanics and Microengineering2210-JMMI
The fracture behavior of graphene monolayer with the substrate binding effect can be investigated by...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Graphene, an atomically-thin layer of hexagonally bonded carbon atoms, is the strongest material eve...
This thesis concerns describing the mechanical properties of the two dimensional material graphene b...
In this paper, we present first a fabrication process of suspended graphene stripes. This process is...
The high-quality two-dimensional (2D) crystals possess remarkable mechanical behaviour which offers ...
Main goal of research is to measure mechanical properties of graphene grown under different conditio...
We have measured the mechanical properties of few-layer graphene and graphite flakes that are suspen...
The mechanical behavior of a periodically buckled graphene membrane has been investigated by noncont...
Using an atomic force microscope, we measured effective spring constants of stacks of graphene sheet...
Graphene, an atomically-thin layer of hexagonally bonded carbon atoms, is the strongest material ev...
Considering the mechanical behavior analysis of graphene film for micro-pressure sensor, the load-de...
Recent progress of simulations/modeling at the atomic level has led to a better understanding of the...
10.1088/0960-1317/22/10/105024Journal of Micromechanics and Microengineering2210-JMMI
The fracture behavior of graphene monolayer with the substrate binding effect can be investigated by...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Graphene, an atomically-thin layer of hexagonally bonded carbon atoms, is the strongest material eve...
This thesis concerns describing the mechanical properties of the two dimensional material graphene b...
In this paper, we present first a fabrication process of suspended graphene stripes. This process is...
The high-quality two-dimensional (2D) crystals possess remarkable mechanical behaviour which offers ...
Main goal of research is to measure mechanical properties of graphene grown under different conditio...
We have measured the mechanical properties of few-layer graphene and graphite flakes that are suspen...
The mechanical behavior of a periodically buckled graphene membrane has been investigated by noncont...
Using an atomic force microscope, we measured effective spring constants of stacks of graphene sheet...
Graphene, an atomically-thin layer of hexagonally bonded carbon atoms, is the strongest material ev...
Considering the mechanical behavior analysis of graphene film for micro-pressure sensor, the load-de...
Recent progress of simulations/modeling at the atomic level has led to a better understanding of the...
10.1088/0960-1317/22/10/105024Journal of Micromechanics and Microengineering2210-JMMI
The fracture behavior of graphene monolayer with the substrate binding effect can be investigated by...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...