The controlled growth of large-area, high-quality, single-crystal graphene is highly desired for applications in electronics and optoelectronics; however, the production of this material remains challenging because the atomistic mechanism that governs graphene growth is not well understood. The edges of graphene, which are the sites at which carbon accumulates in the two-dimensional honeycomb lattice, influence many properties, including the electronic properties and chemical reactivity of graphene, and they are expected to significantly influence its growth. We demonstrate the growth of single-crystal graphene domains with controlled edges that range from zigzag to armchair orientations via growth-etching-regrowth in a chemical vapor depos...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
Three key positions of graphene on a catalyst surface can be identified based on precise computation...
The controlled growth of large-area, high-quality, single-crystal graphene is highly desired for app...
The properties of a graphene nanostructure are strongly influenced by the arrangement of the atoms o...
Understanding the kinetics of graphene chemical vapor deposition (CVD) growth is crucial for desired...
Graphene growth and etching are reciprocal processes that can reach a dynamic balance during chemica...
Reducing nucleation density and healing structural defects are two challenges for fabricating large-...
We report a synthesis route of a carbon-based structure, curved graphene sheet (CGS). The CGS grows ...
We report a synthesis route of a carbon-based structure, curved graphene sheet (CGS). The CGS grows ...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
Here, we reveal the growth process of single and few-layer graphene crystals in the solid carbon sou...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
Three key positions of graphene on a catalyst surface can be identified based on precise computation...
The controlled growth of large-area, high-quality, single-crystal graphene is highly desired for app...
The properties of a graphene nanostructure are strongly influenced by the arrangement of the atoms o...
Understanding the kinetics of graphene chemical vapor deposition (CVD) growth is crucial for desired...
Graphene growth and etching are reciprocal processes that can reach a dynamic balance during chemica...
Reducing nucleation density and healing structural defects are two challenges for fabricating large-...
We report a synthesis route of a carbon-based structure, curved graphene sheet (CGS). The CGS grows ...
We report a synthesis route of a carbon-based structure, curved graphene sheet (CGS). The CGS grows ...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
Here, we reveal the growth process of single and few-layer graphene crystals in the solid carbon sou...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
A new mechanism by which catalytic chemical vapor deposition of graphene spontaneously terminates at...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst...
Three key positions of graphene on a catalyst surface can be identified based on precise computation...