Vacancy defects play an important role in influencing the properties of graphene and understanding their detailed atomic structure is crucial for developing accurate models to predict their impact. Divacancies (DVs) are one of the most common defects in graphene and can take three structural different forms through various sequences of bond rotations to minimize the energy. Using aberration-corrected transmission electron microscopy with monochromation of the electron source, we resolve the position of C atoms in graphene and measure the C-C bond lengths within the three DVs, enabling a map of bond strain to be generated. We show that bond rotations reduce the maximum single bond strain reached within a DV and help distribute the strain ove...
Focused electron beam irradiation has been used to create mono and divacancies in graphene within a ...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
Vacancy defects play an important role in influencing the properties of graphene and understanding t...
Vacancy defects play an important role in influencing the properties of graphene, and understanding ...
Vacancy defects play an important role in influencing the properties of graphene, and understanding ...
Extended linear arm chair defects are intentionally fabricated in suspended monolayer graphene using...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
Defects in graphene alter its electrical, chemical, magnetic and mechanical properties. The intentio...
Defects in graphene alter its electrical, chemical, magnetic and mechanical properties. The intentio...
Graphene has grabbed enormous research attention due to its multiple unique properties. These proper...
We show that dislocations located at the edge of graphene cause different lattice deformations to th...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
Focused electron beam irradiation has been used to create mono and divacancies in graphene within a ...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
Vacancy defects play an important role in influencing the properties of graphene and understanding t...
Vacancy defects play an important role in influencing the properties of graphene, and understanding ...
Vacancy defects play an important role in influencing the properties of graphene, and understanding ...
Extended linear arm chair defects are intentionally fabricated in suspended monolayer graphene using...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
Defects in graphene alter its electrical, chemical, magnetic and mechanical properties. The intentio...
Defects in graphene alter its electrical, chemical, magnetic and mechanical properties. The intentio...
Graphene has grabbed enormous research attention due to its multiple unique properties. These proper...
We show that dislocations located at the edge of graphene cause different lattice deformations to th...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...
Focused electron beam irradiation has been used to create mono and divacancies in graphene within a ...
Strain fields, dislocations, and defects may be used to control electronic properties of graphene. B...
The movement of dislocations in a crystal is the key mechanism for plastic deformation in all materi...