In this study, in situ transmission electron microscopy is performed to study the interaction between single (monomer) and paired (dimer) Sn atoms at graphene edges. The results reveal that a single Sn atom can catalyze both the growth and etching of graphene by the addition and removal of C atoms respectively. Additionally, the frequencies of the energetically favorable configurations of an Sn atom at a graphene edge, calculated using density functional theory calculations, are compared with experimental observations and are found to be in good agreement. The remarkable dynamic processes of binary atoms (dimers) are also investigated and is the first such study to the best of the knowledge. Dimer diffusion along the graphene edges depends ...
This dissertation demonstrates the dry contact transfer of atomically precise graphene nanoribbons o...
Fabricating stable functional devices at the atomic scale is an ultimate goal of nanotechnology. In ...
In this study, we aim to contribute an understanding of the pathway of formation of Fe species durin...
In this study, in situ transmission electron microscopy is performed to study the interaction betwee...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
Recent studies of single-atom catalysts open up the prospect of designing exceptionally active and e...
Anchored Single-atom catalysts have emerged as a cutting-edge research field holding tremendous appe...
Single-atom catalysts (SACs) based on graphene derivatives are an emerging and growing class of mate...
In this study, we aim to contribute an understanding of the pathway of formation of Fe species durin...
Anchored Single-atom catalysts have emerged as a cutting-edge research field holding tremendous appe...
Single-atom catalysts are of great interest because of their high efficiency. In the case of chemica...
We show how Gd based metallofullerene (Gd3N@C80) molecules can be used to create single adatoms and ...
This dissertation demonstrates the dry contact transfer of atomically precise graphene nanoribbons o...
Fabricating stable functional devices at the atomic scale is an ultimate goal of nanotechnology. In ...
In this study, we aim to contribute an understanding of the pathway of formation of Fe species durin...
In this study, in situ transmission electron microscopy is performed to study the interaction betwee...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
There is ongoing research in freestanding single-atom thick elemental metal patches, including those...
Recent studies of single-atom catalysts open up the prospect of designing exceptionally active and e...
Anchored Single-atom catalysts have emerged as a cutting-edge research field holding tremendous appe...
Single-atom catalysts (SACs) based on graphene derivatives are an emerging and growing class of mate...
In this study, we aim to contribute an understanding of the pathway of formation of Fe species durin...
Anchored Single-atom catalysts have emerged as a cutting-edge research field holding tremendous appe...
Single-atom catalysts are of great interest because of their high efficiency. In the case of chemica...
We show how Gd based metallofullerene (Gd3N@C80) molecules can be used to create single adatoms and ...
This dissertation demonstrates the dry contact transfer of atomically precise graphene nanoribbons o...
Fabricating stable functional devices at the atomic scale is an ultimate goal of nanotechnology. In ...
In this study, we aim to contribute an understanding of the pathway of formation of Fe species durin...