The electronic structure of decoupled graphene on SiC(0001) can be tailored by introducing atomically thin layers of germanium at the interface. The electronically inactive (6 root 3 x 6 root 3)R30 degrees reconstructed buffer layer on SiC(0001) is converted into quasi-free-standing monolayer graphene after Ge intercalation and shows the characteristic graphene pi bands as displayed by angle-resolved photoelectron spectroscopy. Low-energy electron microscopy (LEEM) studies reveal an unusual mechanism of the intercalation in which the initial buffer layer is first ruptured into nanoscopic domains to allow the local in-diffusion of germanium to the interface. Upon further annealing, a continuous and homogeneous quasifree graphene film develop...
The influence of lithium (Li) exposures on monolayer graphene grown on the silicon-terminated SiC(00...
Material growth on a dangling-bond-free interface such as graphene is a challenging technological ta...
Graphene intercalation is a novel way to control graphene\u27s band structure and generate two-dimen...
Recently huge interest has been focussed on Ge-intercalated graphene. In order to address the effect...
In this study, the ambivalent behavior of Ge intercalation is studied by means of scanning tunneling...
The growth of epitaxial graphene on SiC has been identified as one of the most promising techniques ...
The synthesis of new graphene-based quantum materials by intercalation is an auspicious approach. Ho...
Quasi-free-standing epitaxial graphene is obtained on SiC(0001) by hydrogen intercalation. The hydro...
Graphene formation on top of SiC(0001) by decoupling the carbon buffer layer through lithium interca...
Graphene formation on top of SiC(0001) by decoupling the carbon buffer layer through lithium interca...
The atomic and electronic structure of graphene synthesized on commercially available cubic-SiC(001)...
On the SiC(0001) surface (the silicon face of SiC), epitaxial graphene is obtained by sublimation of...
The atomic and electronic structure of graphene synthesized on commercially available cubic-SiC(001)...
Graphene has been granted with appealing attributes for new-generation electronics due to its unique...
Because of its high compatibility with conventional microfabrication processing technology, epitaxia...
The influence of lithium (Li) exposures on monolayer graphene grown on the silicon-terminated SiC(00...
Material growth on a dangling-bond-free interface such as graphene is a challenging technological ta...
Graphene intercalation is a novel way to control graphene\u27s band structure and generate two-dimen...
Recently huge interest has been focussed on Ge-intercalated graphene. In order to address the effect...
In this study, the ambivalent behavior of Ge intercalation is studied by means of scanning tunneling...
The growth of epitaxial graphene on SiC has been identified as one of the most promising techniques ...
The synthesis of new graphene-based quantum materials by intercalation is an auspicious approach. Ho...
Quasi-free-standing epitaxial graphene is obtained on SiC(0001) by hydrogen intercalation. The hydro...
Graphene formation on top of SiC(0001) by decoupling the carbon buffer layer through lithium interca...
Graphene formation on top of SiC(0001) by decoupling the carbon buffer layer through lithium interca...
The atomic and electronic structure of graphene synthesized on commercially available cubic-SiC(001)...
On the SiC(0001) surface (the silicon face of SiC), epitaxial graphene is obtained by sublimation of...
The atomic and electronic structure of graphene synthesized on commercially available cubic-SiC(001)...
Graphene has been granted with appealing attributes for new-generation electronics due to its unique...
Because of its high compatibility with conventional microfabrication processing technology, epitaxia...
The influence of lithium (Li) exposures on monolayer graphene grown on the silicon-terminated SiC(00...
Material growth on a dangling-bond-free interface such as graphene is a challenging technological ta...
Graphene intercalation is a novel way to control graphene\u27s band structure and generate two-dimen...