The atomic structure at the boundary interface between interconnected few-layer graphene (FLG) domains, synthesized by atmospheric pressure chemical vapor deposition (AP-CVD), is examined using aberration-corrected high-resolution transmission electron microscopy. Moiré patterns in the HRTEM images reveal the presence of rotational stacking faults in the boundary region that extend over distances of ∼100 nm. We show that FLG domains interconnect via two principle processes: graphene sheets from one domain grow over the top of a neighboring domain, while other graphene domains interconnect by direct atomic bonding. Differentiating between these two types of interconnects was found to be possible by examining the HRTEM contrast profiles produ...
The pursuit of high quality, large area graphene has been a major research focus of contemporary mat...
Graphene is a promising material for electronic and mechanical applications due to its excellent cha...
ABSTRACT Using high resolution transmission electron microscopy, we identify the specific atomic sca...
The atomic structure at the boundary interface between interconnected few-layer graphene (FLG) domai...
Understanding and engineering the domain boundaries in chemically vapor deposited monolayer graphene...
My primary goal was to perform an in depth characterisation of the atomic structure of graphene edge...
Folds and creases are frequently found in graphene grown by chemical vapor deposition (CVD), due to ...
Folds and creases are frequently found in graphene grown by chemical vapor deposition (CVD), due to ...
The atomic structure of a material influences its electronic, chemical, magnetic and mechanical prop...
The formation of grain boundaries (GBs) in graphene films is both fundamentally interesting and prac...
The formation of grain boundaries (GBs) in graphene films is both fundamentally interesting and prac...
We distinguish between Bernal and rhombohedral stacked trilayer graphene using aberration-corrected ...
In the transition from graphene to graphite, the addition of each individual graphene layer modifies...
Hexagonal-shaped single crystal domains of few layer graphene (FLG) are synthesized on copper foils ...
Hexagonal-shaped single crystal domains of few layer graphene (FLG) are synthesized on copper foils ...
The pursuit of high quality, large area graphene has been a major research focus of contemporary mat...
Graphene is a promising material for electronic and mechanical applications due to its excellent cha...
ABSTRACT Using high resolution transmission electron microscopy, we identify the specific atomic sca...
The atomic structure at the boundary interface between interconnected few-layer graphene (FLG) domai...
Understanding and engineering the domain boundaries in chemically vapor deposited monolayer graphene...
My primary goal was to perform an in depth characterisation of the atomic structure of graphene edge...
Folds and creases are frequently found in graphene grown by chemical vapor deposition (CVD), due to ...
Folds and creases are frequently found in graphene grown by chemical vapor deposition (CVD), due to ...
The atomic structure of a material influences its electronic, chemical, magnetic and mechanical prop...
The formation of grain boundaries (GBs) in graphene films is both fundamentally interesting and prac...
The formation of grain boundaries (GBs) in graphene films is both fundamentally interesting and prac...
We distinguish between Bernal and rhombohedral stacked trilayer graphene using aberration-corrected ...
In the transition from graphene to graphite, the addition of each individual graphene layer modifies...
Hexagonal-shaped single crystal domains of few layer graphene (FLG) are synthesized on copper foils ...
Hexagonal-shaped single crystal domains of few layer graphene (FLG) are synthesized on copper foils ...
The pursuit of high quality, large area graphene has been a major research focus of contemporary mat...
Graphene is a promising material for electronic and mechanical applications due to its excellent cha...
ABSTRACT Using high resolution transmission electron microscopy, we identify the specific atomic sca...