Spin-polarized density functional theory has been used to study the effects of vacancy defects on the magnetic properties of graphene. Structural optimization shows that introducing a carbon vacancy cluster into a graphene sheet changes the spatial distribution of the neighbor atoms, particularly those located around the vacancy. From spin-polarized DOS and LPDOS calculations, we find that only vacancies containing unpaired electrons show magnetism. These results lead us to formulate a relation between the vacancy-induced magnetic moment and the size and shape of the vacancy clusters in graphene sheet
Spintronics generally refers to technology where devices utilise the spin of the electron in additio...
The possibility to induce a magnetic response in graphene by the introduction of defects has been ge...
We make use of first-principles calculations, based on the density functional theory (DFT)...
Spin-polarized density functional theory has been used to study the effects of vacancy defects on th...
Abstract. Graphene, a plane object composed of carbon atoms, is a perspective material for nanoelect...
Vacancy-induced magnetization of a graphene layer is investigated by means of a first-principles DFT...
doi:10.1088/1367-2630/6/1/068 Abstract. Spin-polarized density functional theory has been used to st...
One intriguing finding in graphene is the vacancy-induced magnetism that highlights the interesting ...
The experimental realization of two-dimensional materials such as graphene, silicene and germanene h...
The observation of intrinsic magnetic order in graphene and graphene-based materials relies on the f...
We address the electronic structure and magnetic properties of vacancies and voids both in graphene ...
We investigate the details of the electronic structure in the neighborhoods of a carbon atom vacancy...
Control of magnetism by applied voltage is desirable for spintronics applications. Finding a suitabl...
We study the electronic structure of graphene with a single substitutional vacancy using a combinati...
Doping of the graphene lattice with transition-metal atoms resulting in a high magnetic anisotropy e...
Spintronics generally refers to technology where devices utilise the spin of the electron in additio...
The possibility to induce a magnetic response in graphene by the introduction of defects has been ge...
We make use of first-principles calculations, based on the density functional theory (DFT)...
Spin-polarized density functional theory has been used to study the effects of vacancy defects on th...
Abstract. Graphene, a plane object composed of carbon atoms, is a perspective material for nanoelect...
Vacancy-induced magnetization of a graphene layer is investigated by means of a first-principles DFT...
doi:10.1088/1367-2630/6/1/068 Abstract. Spin-polarized density functional theory has been used to st...
One intriguing finding in graphene is the vacancy-induced magnetism that highlights the interesting ...
The experimental realization of two-dimensional materials such as graphene, silicene and germanene h...
The observation of intrinsic magnetic order in graphene and graphene-based materials relies on the f...
We address the electronic structure and magnetic properties of vacancies and voids both in graphene ...
We investigate the details of the electronic structure in the neighborhoods of a carbon atom vacancy...
Control of magnetism by applied voltage is desirable for spintronics applications. Finding a suitabl...
We study the electronic structure of graphene with a single substitutional vacancy using a combinati...
Doping of the graphene lattice with transition-metal atoms resulting in a high magnetic anisotropy e...
Spintronics generally refers to technology where devices utilise the spin of the electron in additio...
The possibility to induce a magnetic response in graphene by the introduction of defects has been ge...
We make use of first-principles calculations, based on the density functional theory (DFT)...