Ferroelectric van der Waals heterostructures provide a natural platform to design a variety of electrically controllable devices. In this work, we demonstrate that AB bilayer graphene encapsulated in MoTe$_2$ acts as a valley valve that displays a switchable built-in topological gap, leading to ferroelectrically driven topological channels. Using a combination of ab initio calculations and low energy models, we show that the ferroelectric order of MoTe$_2$ allows the control of the gap opening in bilayer graphene and leads to topological channels between different ferroelectric domains. Moreover, we analyze the effect that the moir\'e modulation between MoTe$_2$ and graphene layers has in the topological modes, demonstrating that the edge s...
Manipulation of the valley degree of freedom provides a novel paradigm in quantum information techno...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...
The relative strength of different proximity spin-orbit couplings in graphene on transition metal di...
The relative strength of different proximity spin-orbit couplings in graphene on transition metal di...
The domain walls between AB- and BA-stacked gapped bilayer graphene have garnered intense interest a...
Twisted bilayer MoTe$_2$ is a promising platform to investigate the interplay between band topology ...
Understanding quantum many-body systems is at the heart of condensed matter physics. The ability to ...
Recently, great experimental efforts towards designing topological electronic states have been inves...
Topological magnetoelectric effect (TME) is a hallmark response of the topological field theory, whi...
Most non-ferroelectric two-dimensional materials can be endowed with so-called sliding ferroelectric...
We demonstrate a generic mechanism to realize topological flat minibands by confining massive Dirac ...
Topological electronics is a new field that uses topological charges as current-carrying degrees of ...
Topological electronics is a new field that uses topological charges as current-carrying degrees of ...
Twisted heterostructures of two-dimensional crystals offer almost unlimited scope for the design of ...
Manipulation of the valley degree of freedom provides a novel paradigm in quantum information techno...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...
The relative strength of different proximity spin-orbit couplings in graphene on transition metal di...
The relative strength of different proximity spin-orbit couplings in graphene on transition metal di...
The domain walls between AB- and BA-stacked gapped bilayer graphene have garnered intense interest a...
Twisted bilayer MoTe$_2$ is a promising platform to investigate the interplay between band topology ...
Understanding quantum many-body systems is at the heart of condensed matter physics. The ability to ...
Recently, great experimental efforts towards designing topological electronic states have been inves...
Topological magnetoelectric effect (TME) is a hallmark response of the topological field theory, whi...
Most non-ferroelectric two-dimensional materials can be endowed with so-called sliding ferroelectric...
We demonstrate a generic mechanism to realize topological flat minibands by confining massive Dirac ...
Topological electronics is a new field that uses topological charges as current-carrying degrees of ...
Topological electronics is a new field that uses topological charges as current-carrying degrees of ...
Twisted heterostructures of two-dimensional crystals offer almost unlimited scope for the design of ...
Manipulation of the valley degree of freedom provides a novel paradigm in quantum information techno...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...
The intertwined ferroelectricity and band topology will enable the non-volatile control of the topol...