Using first-principles calculations, we reveal that the perpendicular magnetic anisotropy of NiI2 monolayer can be effectively enhanced via decreasing the interlayer distance of graphene/NiI2 (Gr/NiI2) van der Waals (vdW) heterostructures. Furthermore, by analyzing the atomic-resolved magnetocrystalline anisotropy energy (MAE), orbital hybridization-resolved MAE and the density of states we elucidate that this magnetic anisotropy enhancement mainly originated from the electronic states change of 5p orbitals of interfacial I atoms. At the same time, we find that the NiI2 substrate induces strong magnetic proximity effects on graphene and the quantum anomalous Hall effect (QAHE) can be acquired by decreasing the interlayer spacing. Our work d...
Graphene is the first model system of two-dimensional topological insulator (TI), also known as quan...
Quantum anomalous Hall state is expected to emerge in Dirac electron systems such as graphene under ...
International audienceWe report a systematic first-principles investigation of the influence of diff...
Engineering 2D material heterostructures by combining the best of different materials in one ultimat...
Magnetic anisotropy often plays a central role in various static and dynamic properties of magnetic ...
Two-dimensional materials provide a new platform for discovery of exotic physics and phenomena. They...
The extreme versatility of two-dimensional van der Waals (vdW) materials derives from their ability ...
The quantum anomalous hall effect (QAHE) is a phase of matter in which a dissipationless current is ...
Interfaces are ubiquitous in materials science, and in devices in particular. As device dimensions a...
The advent of new two-dimensional materials, and the ability to create van der Waals heterostructure...
International audienceWe report strongly enhanced perpendicular magnetic anisotropy (PMA) of Co film...
We propose realizing the quantum anomalous Hall effect by proximity coupling graphene to an antiferr...
Graphene is the first model system of two-dimensional topological insulator (TI), also known as quan...
Quantum anomalous Hall state is expected to emerge in Dirac electron systems such as graphene under ...
International audienceWe report a systematic first-principles investigation of the influence of diff...
Engineering 2D material heterostructures by combining the best of different materials in one ultimat...
Magnetic anisotropy often plays a central role in various static and dynamic properties of magnetic ...
Two-dimensional materials provide a new platform for discovery of exotic physics and phenomena. They...
The extreme versatility of two-dimensional van der Waals (vdW) materials derives from their ability ...
The quantum anomalous hall effect (QAHE) is a phase of matter in which a dissipationless current is ...
Interfaces are ubiquitous in materials science, and in devices in particular. As device dimensions a...
The advent of new two-dimensional materials, and the ability to create van der Waals heterostructure...
International audienceWe report strongly enhanced perpendicular magnetic anisotropy (PMA) of Co film...
We propose realizing the quantum anomalous Hall effect by proximity coupling graphene to an antiferr...
Graphene is the first model system of two-dimensional topological insulator (TI), also known as quan...
Quantum anomalous Hall state is expected to emerge in Dirac electron systems such as graphene under ...
International audienceWe report a systematic first-principles investigation of the influence of diff...