Semiconducting graphene nanoribbons (GNRs) are envisioned to play an important role in future electronics. This requires the GNRs to be placed on a surface where they may become strained. Theory predicts that axial strain, i.e. in-plane bending of the GNR, will cause a change in the band gap of the GNR. This may negatively affect device performance. Using the tip of a scanning tunneling microscope we controllably bent and buckled atomically well-defined narrow armchair GNR and subsequently probed the changes in the local density of states. These experiments show that the band gap of 7-ac-GNR is very robust to in-plane bending and out-of-plane buckling
We examine the mechanical response of single layer graphene nanoribbons (GNR) under constant compres...
A prerequisite for future graphene nanoribbon (GNR) applications is the ability to fine-tune the ele...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
We theoretically investigate the electronic structures for armchair-edge graphene nanoribbons (AGNRs...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
We report a first-principles study on the electronic structures of deformed graphene nanoribbons (GN...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
Graphene nanoribbons (GNRs) are strips of graphene, featuring narrow widths at the nanometer scale. ...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
The electronic properties of graphene are influenced by both geometric confinement and strain. We st...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
The electronic band structure and carrier density of strained armchair graphene nanoribbons (AGNRs) ...
We examine the mechanical response of single layer graphene nanoribbons (GNR) under constant compres...
A prerequisite for future graphene nanoribbon (GNR) applications is the ability to fine-tune the ele...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
We theoretically investigate the electronic structures for armchair-edge graphene nanoribbons (AGNRs...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
We report a first-principles study on the electronic structures of deformed graphene nanoribbons (GN...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
The mechanical response of patterned graphene nanoribbons (GNRs) with a width less than 100 nm was s...
Graphene nanoribbons (GNRs) are strips of graphene, featuring narrow widths at the nanometer scale. ...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
The electronic properties of graphene are influenced by both geometric confinement and strain. We st...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
Graphene nanoribbons (GNRs)—narrow stripes of graphene—have emerged as promising building blocks for...
The electronic band structure and carrier density of strained armchair graphene nanoribbons (AGNRs) ...
We examine the mechanical response of single layer graphene nanoribbons (GNR) under constant compres...
A prerequisite for future graphene nanoribbon (GNR) applications is the ability to fine-tune the ele...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...