Nanoelectromechanical systems (NEMS) have drawn considerable attention towards several sensing applications such as force, spin, charge and mass. These devices due to their smaller size, operate at very high frequencies (MHz - GHz) and have very high quality factors (102 -105). However, the early onset of nonlinearity limits the linear dynamic range of these devices. In this work we investigate the nonlinearities and their effect on the performance of graphene based NEMS. Electromechanical devices based on 2D materials are extremely sensitive to strain. We studied the effect of strain on the performance of single layer Graphene NEMS and show how the strain in Graphene NEMS can be tuned to increase the range of linear operation. Electrome...
Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...
From sensing perspective, smaller electromechanical devices, in general, are expected to be more res...
Graphene, a carbon-based two-dimensional material, has remarkable electrical and mechanical properti...
Graphene, a carbon-based two-dimensional material, has remarkable electrical and mechanical properti...
In this article, we report on a comprehensive modeling study of frequency tuning of graphene resonan...
Made of only on sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. S...
Made of only on sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. S...
Enhancing the mass sensitivity of graphene nanoresonators via nonlinear oscillations: The effective ...
The enormous stiffness and low density of graphene make it an ideal material for nanoelectromechanic...
Nanoelectromechanical systems (NEMS) can measure very small forces and mass as has been showcased in...
Nanoelectromechanical systems (NEMS) can measure very small forces and mass as has been showcased in...
Made of only one sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. ...
Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, ...
Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...
From sensing perspective, smaller electromechanical devices, in general, are expected to be more res...
Graphene, a carbon-based two-dimensional material, has remarkable electrical and mechanical properti...
Graphene, a carbon-based two-dimensional material, has remarkable electrical and mechanical properti...
In this article, we report on a comprehensive modeling study of frequency tuning of graphene resonan...
Made of only on sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. S...
Made of only on sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. S...
Enhancing the mass sensitivity of graphene nanoresonators via nonlinear oscillations: The effective ...
The enormous stiffness and low density of graphene make it an ideal material for nanoelectromechanic...
Nanoelectromechanical systems (NEMS) can measure very small forces and mass as has been showcased in...
Nanoelectromechanical systems (NEMS) can measure very small forces and mass as has been showcased in...
Made of only one sheet of carbon atoms, graphene is the thinnest yet strongest material ever exist. ...
Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, ...
Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive ...