Inducing and controlling spin-orbit coupling (SOC) in graphene is key to create topological states of matter, and for the realization of spintronic devices. Placing graphene onto a transition metal dichalcogenide is currently the most successful strategy to achieve this goal, but there is no consensus as to the nature and the magnitude of the induced SOC. Here, we show that the presence of backscattering in graphene-on-WSe$_2$ heterostructures can be used to probe SOC and to determine its strength quantitatively, by imaging quasiparticle interference with a scanning tunneling microscope. A detailed theoretical analysis of the Fourier transform of quasiparticle interference images reveals that the induced SOC consists of a valley-Zeeman ($\l...
Pseudospin, an additional degree of freedom emerging in graphene as a direct consequence of its hone...
Using first-principles combined with quantum transport calculations, we predict that graphene sandwi...
Since its discovery, graphene has been a promising material for spintronics: its low spin-orbit coup...
van der Waals heterostructures based on two-dimensional materials have recently become a very active...
Graphene stands out for its high mobility and weak spin-orbit coupling (SOC) offering efficient tran...
We demonstrate clear weak anti-localization (WAL) effect arising from induced Rashba spin–orbit coup...
We use a combination of experimental techniques to demonstrate a general occurrence of spin-orbit in...
Large spin-orbital proximity effects have been predicted in graphene interfaced with a transition-me...
Large spin-orbital proximity effects have been predicted in graphene interfaced with a transition-me...
Proximity effects between layered materials trigger a plethora of novel and exotic quantum transport...
Strong gate control of proximity-induced spin-orbit coupling was recently predicted in bilayer graph...
Van der Waals heterostructures assembled from atomically thin crystals are ideal model systems to st...
We investigate the proximity-induced spin-orbit coupling in heterostructures of twisted graphene and...
We present a DFT-based investigation of the twist-angle dependent proximity spin-orbit coupling (SOC...
Graphene supported on a transition metal dichalcogenide substrate offers a novel platform to study t...
Pseudospin, an additional degree of freedom emerging in graphene as a direct consequence of its hone...
Using first-principles combined with quantum transport calculations, we predict that graphene sandwi...
Since its discovery, graphene has been a promising material for spintronics: its low spin-orbit coup...
van der Waals heterostructures based on two-dimensional materials have recently become a very active...
Graphene stands out for its high mobility and weak spin-orbit coupling (SOC) offering efficient tran...
We demonstrate clear weak anti-localization (WAL) effect arising from induced Rashba spin–orbit coup...
We use a combination of experimental techniques to demonstrate a general occurrence of spin-orbit in...
Large spin-orbital proximity effects have been predicted in graphene interfaced with a transition-me...
Large spin-orbital proximity effects have been predicted in graphene interfaced with a transition-me...
Proximity effects between layered materials trigger a plethora of novel and exotic quantum transport...
Strong gate control of proximity-induced spin-orbit coupling was recently predicted in bilayer graph...
Van der Waals heterostructures assembled from atomically thin crystals are ideal model systems to st...
We investigate the proximity-induced spin-orbit coupling in heterostructures of twisted graphene and...
We present a DFT-based investigation of the twist-angle dependent proximity spin-orbit coupling (SOC...
Graphene supported on a transition metal dichalcogenide substrate offers a novel platform to study t...
Pseudospin, an additional degree of freedom emerging in graphene as a direct consequence of its hone...
Using first-principles combined with quantum transport calculations, we predict that graphene sandwi...
Since its discovery, graphene has been a promising material for spintronics: its low spin-orbit coup...