The specific rotational alignment of two-dimensional lattices results in a moiré superlattice with a larger period than the original lattices and allows one to engineer the electronic band structure of such materials. So far, transport signatures of such superlattices have been reported for graphene/hBN and graphene/graphene systems. Here we report moiré superlattices in fully hBN encapsulated graphene with both the top and the bottom hBN aligned to the graphene. In the graphene, two different moiré superlattices form with the top and the bottom hBN, respectively. The overlay of the two superlattices can result in a third superlattice with a period larger than the maximum period (14 nm) in the graphene/hBN system, which we explain in a s...
Abstract: When using hexagonal boron-nitride (hBN) as a substrate for graphene, the resulting moire ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
We present a phenomenological theory of the low energy moir\'e minibands of Dirac electrons in graph...
The specific rotational alignment of two-dimensional lattices results in a moire superlattice with a...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
Superlattices have attracted great interest because their use may make it possible to modify the spe...
The superlattice obtained by aligning a monolayer graphene and boron nitride (BN) inherits from the ...
Because of their unique atomic structure, 2D materials are able to create an up to date paradigm in ...
The superlattice obtained by aligning a monolayer graphene and boron nitride (BN) inherits from the ...
Graphene's planar structure and unique low energy spectrum make it an intriguing material to study i...
Van der Waals heterostructures of graphene and hexagonal boron nitride feature a moiré superlattice...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
Recent experimental studies on graphene on hexagonal boron nitride (hBN) have demonstrated that hBN ...
Moiré patterns from two-dimensional (2D) graphene heterostructures assembled via van der Waals inter...
We have studied the electronic excitation spectrum in periodically rippled graphene on Ru(0 0 0 1) a...
Abstract: When using hexagonal boron-nitride (hBN) as a substrate for graphene, the resulting moire ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
We present a phenomenological theory of the low energy moir\'e minibands of Dirac electrons in graph...
The specific rotational alignment of two-dimensional lattices results in a moire superlattice with a...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
Superlattices have attracted great interest because their use may make it possible to modify the spe...
The superlattice obtained by aligning a monolayer graphene and boron nitride (BN) inherits from the ...
Because of their unique atomic structure, 2D materials are able to create an up to date paradigm in ...
The superlattice obtained by aligning a monolayer graphene and boron nitride (BN) inherits from the ...
Graphene's planar structure and unique low energy spectrum make it an intriguing material to study i...
Van der Waals heterostructures of graphene and hexagonal boron nitride feature a moiré superlattice...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
Recent experimental studies on graphene on hexagonal boron nitride (hBN) have demonstrated that hBN ...
Moiré patterns from two-dimensional (2D) graphene heterostructures assembled via van der Waals inter...
We have studied the electronic excitation spectrum in periodically rippled graphene on Ru(0 0 0 1) a...
Abstract: When using hexagonal boron-nitride (hBN) as a substrate for graphene, the resulting moire ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
We present a phenomenological theory of the low energy moir\'e minibands of Dirac electrons in graph...