Ordered atomic-scale superlattices on a surface hold great interest both for basic science and for potential applications in advanced technology. However, controlled fabrication of superlattices down to the atomic scale has proven exceptionally challenging. Here we develop a segregation method to realize self-organization of S superlattices at the interface of graphene and S-rich Cu substrates. Via scanning tunneling microscope measurements, we directly image well-ordered identical nanocluster superlattices and atomic superlattices under the cover of graphene. Scanning tunneling spectra show that the superlattices in turn could modulate the electronic structure of top-layer graphene. Importantly, a special-ordered S monatomic superlattice c...
Interaction with the substrate plays an essential role in determining the structure and electronic p...
In this work we have used atomically-resolved scanning tunneling microscopy and spectroscopy to stud...
The local interaction between graphene and a host substrate strongly determines the actual propertie...
With recent developments in carbon-based electronics, it is imperative to understand the interplay b...
The electronic band structure of an epitaxial graphene superlattice, generated by intercalating a mo...
International audienceMoiré superlattices in graphene supported on various substrates have opened a ...
We report preparation of large area quasi-one-dimensional (1D) monolayer graphene superlattices on a...
International audienceWe present an investigation of the atomic and electronic structure of graphene...
International audienceWe have produced graphene sheets decorated with a nonpercolating network of na...
We employ scanning probe microscopy to reveal atomic structures and nanoscale morphology of graphene...
In this PhD thesis, the recombination of different atomic lattices in stacked 2D materials such as t...
This dissertation focuses on the study of the electronic properties of graphene using scanning tunne...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
Recently, Giovannetti et al. successfully demonstrated that some metals (such as Cu and Au) only hav...
We conducted atomic-scale scanning tunneling microscopy of a graphene nanosheet on graphite. In addi...
Interaction with the substrate plays an essential role in determining the structure and electronic p...
In this work we have used atomically-resolved scanning tunneling microscopy and spectroscopy to stud...
The local interaction between graphene and a host substrate strongly determines the actual propertie...
With recent developments in carbon-based electronics, it is imperative to understand the interplay b...
The electronic band structure of an epitaxial graphene superlattice, generated by intercalating a mo...
International audienceMoiré superlattices in graphene supported on various substrates have opened a ...
We report preparation of large area quasi-one-dimensional (1D) monolayer graphene superlattices on a...
International audienceWe present an investigation of the atomic and electronic structure of graphene...
International audienceWe have produced graphene sheets decorated with a nonpercolating network of na...
We employ scanning probe microscopy to reveal atomic structures and nanoscale morphology of graphene...
In this PhD thesis, the recombination of different atomic lattices in stacked 2D materials such as t...
This dissertation focuses on the study of the electronic properties of graphene using scanning tunne...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
Recently, Giovannetti et al. successfully demonstrated that some metals (such as Cu and Au) only hav...
We conducted atomic-scale scanning tunneling microscopy of a graphene nanosheet on graphite. In addi...
Interaction with the substrate plays an essential role in determining the structure and electronic p...
In this work we have used atomically-resolved scanning tunneling microscopy and spectroscopy to stud...
The local interaction between graphene and a host substrate strongly determines the actual propertie...