Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in novel applications. However, up to now the highest reported strain reached ∼1.3%. Here, we demonstrate uniaxial strains >10% by pulling graphene using a tensile-MEMS. To prevent it from slipping away it was locally clamped with epoxy using a femtopipette. The results were analyzed using Raman spectroscopy and optical tracking. Furthermore, analysis proved the process to be reversible and nondestructive for the graphene
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Strain engineering of graphene has been predicted to change its chemical reactivity, thereby forming...
There are a number of theoretical proposals based on strain engineering of graphene and other two-di...
We report a Raman mapping investigation of strain effects on graphene on transparent and flexible su...
Mechanically straining graphene opens the possibility to exploit new properties linked to the stress...
Mechanically straining graphene opens the possibility to exploit new properties linked to the stress...
There are a number of theoretical proposals based on strain engineering of graphene and other two-di...
Graphene is an atomically thin metallic membrane capable of sustaining reversible strain and offers ...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Theoretical calculations have predicted that extreme strains (>10%) in graphene would result in nove...
Strain engineering of graphene has been predicted to change its chemical reactivity, thereby forming...
There are a number of theoretical proposals based on strain engineering of graphene and other two-di...
We report a Raman mapping investigation of strain effects on graphene on transparent and flexible su...
Mechanically straining graphene opens the possibility to exploit new properties linked to the stress...
Mechanically straining graphene opens the possibility to exploit new properties linked to the stress...
There are a number of theoretical proposals based on strain engineering of graphene and other two-di...
Graphene is an atomically thin metallic membrane capable of sustaining reversible strain and offers ...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
In this thesis single-layer graphene (SLG) is implemented onto a low temperature compatible microele...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...
Graphene has many promising physical properties. It has been discovered that local strain in a graph...