AbstractIn this review, we briefly introduce our in situ atomic-scale mechanical experimental technique (ASMET) for transmission electron microscopy (TEM), which can observe the atomic-scale deformation dynamics of materials. This in situ mechanical testing technique allows the deformation of TEM samples through a simultaneous double-tilt function, making atomic-scale mechanical microscopy feasible. This methodology is generally applicable to thin films, nanowires (NWs), tubes and regular TEM samples to allow investigation of the dynamics of mechanically stressed samples at the atomic scale. We show several examples of this technique applied to Pt and Cu single/polycrystalline specimens. The in situ atomic-scale observation revealed that wh...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
In this dissertation, the relationships between structure-mechanical properties-deformation mechanis...
AbstractIn this review, we briefly introduce our in situ atomic-scale mechanical experimental techni...
Twin boundary can both strengthen and soften nanocrystalline metals and has been an important path f...
Because of the lower total number and density of defects in nanocrystals than those in their bulk co...
The atomic-scale deformation dynamic behaviors of Pt nanocrystals with size of similar to 18 nm were...
The atomistic mechanisms active during plastic deformation of nanocrystalline metals are still a sub...
The atomistic mechanisms active during plastic deformation of nanocrystalline metals are still a sub...
“Smaller is stronger,” sub-, micro-, and nanomaterials exhibit high strength, ultralarge elasticity ...
DoctorFor the last two decades, the experimental observation of size effects has attracted tremendou...
Revealing the deformation and friction mechanisms of nanomaterials at atomic scale, remains challeng...
The mechanical reliability of nanoscale metals is a precondition for electronic devices to function ...
The mechanical reliability of nanoscale metals is a precondition for electronic devices to function ...
Nanocrystalline materials reveal excellent mechanical properties but the mechanism by which they def...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
In this dissertation, the relationships between structure-mechanical properties-deformation mechanis...
AbstractIn this review, we briefly introduce our in situ atomic-scale mechanical experimental techni...
Twin boundary can both strengthen and soften nanocrystalline metals and has been an important path f...
Because of the lower total number and density of defects in nanocrystals than those in their bulk co...
The atomic-scale deformation dynamic behaviors of Pt nanocrystals with size of similar to 18 nm were...
The atomistic mechanisms active during plastic deformation of nanocrystalline metals are still a sub...
The atomistic mechanisms active during plastic deformation of nanocrystalline metals are still a sub...
“Smaller is stronger,” sub-, micro-, and nanomaterials exhibit high strength, ultralarge elasticity ...
DoctorFor the last two decades, the experimental observation of size effects has attracted tremendou...
Revealing the deformation and friction mechanisms of nanomaterials at atomic scale, remains challeng...
The mechanical reliability of nanoscale metals is a precondition for electronic devices to function ...
The mechanical reliability of nanoscale metals is a precondition for electronic devices to function ...
Nanocrystalline materials reveal excellent mechanical properties but the mechanism by which they def...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
It is believed that the dynamics of dislocation processes during the deformation of nanocrystalline ...
In this dissertation, the relationships between structure-mechanical properties-deformation mechanis...