We use scanning tunneling microscopy and X-ray spectroscopy to characterize the atomic and electronic structure of boron-doped and nitrogen-doped graphene created by chemical vapor deposition on copper substrates. Microscopic measurements show that boron, like nitrogen, incorporates into the carbon lattice primarily in the graphitic form and contributes ∼0.5 carriers into the graphene sheet per dopant. Density functional theory calculations indicate that boron dopants interact strongly with the underlying copper substrate while nitrogen dopants do not. The local bonding differences between graphitic boron and nitrogen dopants lead to large scale differences in dopant distribution. The distribution of dopants is observed to be completely ran...
Atomic-level substitutional doping can significantly tune the electronic properties of graphene. Usi...
We report a new method for the codoping of boron and nitrogen in a monolayer graphene film. After th...
The structural, energetic, and electronic properties of single-layer graphene doped with boron and n...
Chemical doping has been demonstrated to be an effective method for producing high-quality, large-ar...
Chemical vapor deposition growth has been a popular technique to produce large-area, high-quality mo...
Single layer boron-doped graphene layers have been grown on polycrystalline copper foils by chemical...
In situ boron or nitrogen doping in chemical vapor deposition growth of graphene on Cu (111) surface...
Chemical doping is one of the most suitable ways of tuning the electronic properties of graphene and...
Embedding foreign atoms or molecules in graphene has become the key approach in its functionalizatio...
Boron- and nitrogen-doped graphenes are are prepared by the arc discharge between carbon electrodes ...
Single layer boron-doped graphene layers have been grown on polycrystalline copper foils by chemical...
We investigate the development of the local bonding and chemical state of boron atoms during the gro...
Embedding foreign atoms or molecules in graphene has become the key approach in its functionalizatio...
cited By 63International audienceNitrogen-doped epitaxial graphene grown on SiC(0001̄) was prepared ...
Heteroatom doping is an efficient way to modify the chemical and electronic properties of graphene. ...
Atomic-level substitutional doping can significantly tune the electronic properties of graphene. Usi...
We report a new method for the codoping of boron and nitrogen in a monolayer graphene film. After th...
The structural, energetic, and electronic properties of single-layer graphene doped with boron and n...
Chemical doping has been demonstrated to be an effective method for producing high-quality, large-ar...
Chemical vapor deposition growth has been a popular technique to produce large-area, high-quality mo...
Single layer boron-doped graphene layers have been grown on polycrystalline copper foils by chemical...
In situ boron or nitrogen doping in chemical vapor deposition growth of graphene on Cu (111) surface...
Chemical doping is one of the most suitable ways of tuning the electronic properties of graphene and...
Embedding foreign atoms or molecules in graphene has become the key approach in its functionalizatio...
Boron- and nitrogen-doped graphenes are are prepared by the arc discharge between carbon electrodes ...
Single layer boron-doped graphene layers have been grown on polycrystalline copper foils by chemical...
We investigate the development of the local bonding and chemical state of boron atoms during the gro...
Embedding foreign atoms or molecules in graphene has become the key approach in its functionalizatio...
cited By 63International audienceNitrogen-doped epitaxial graphene grown on SiC(0001̄) was prepared ...
Heteroatom doping is an efficient way to modify the chemical and electronic properties of graphene. ...
Atomic-level substitutional doping can significantly tune the electronic properties of graphene. Usi...
We report a new method for the codoping of boron and nitrogen in a monolayer graphene film. After th...
The structural, energetic, and electronic properties of single-layer graphene doped with boron and n...