Creating alternating layers of 2D materials forms vertical heterostructures with diverse electronic and opto-electronic properties. Monolayer WS2 grown by chemical vapour deposition can have inherent strain due to interactions with the substrate. The strain modifies the band structure and properties of monolayer WS2 and can be exploited in a wide range of applications. We demonstrate a non-aqueous transfer method for creating vertical stacks of mixed 2D layers containing a strained monolayer of WS2, with Boron Nitride and Graphene. The 2D materials are all grown by CVD, enabling large area vertical heterostructures to be formed. WS2 monolayers grown by CVD directly on Si substrates with SiO2 surface are easily washed off by water and this m...
Vertical van der Waals heterostructures are formed when different 2D crystals are stacked on top of ...
In this thesis, field effect transistors (FETs), tunnel barrier transistors (TBTs), and photodetecto...
Engineering 2D transition metal dichalcogenides with precise control over layer number enable tuning...
Creating alternating layers of 2D materials forms vertical heterostructures with diverse electronic ...
The production of large area, high quality two-dimensional (2D) materials using chemical vapour depo...
Van der Waals heterostructures (vdWHSs) provide a unique playground to study fundamental physics and...
We study the interactions in graphene/WS2 2D layered vertical heterostructures with variations in th...
We study the interactions in graphene/WS<sub>2</sub> two-dimensional (2D) layered vertical heterostr...
A family of materials similar to graphene are transition metal dichalcogenides (TMDs) which have eme...
apid progress in the research of two-dimensional (2D) atomic crystals, such as graphene, monolayer a...
Graphene is undoubtedly emerging as one of the most promising nanomaterials because of its unique co...
Layer-by-layer stacking or lateral interfacing of atomic monolayers has opened up unprecedented oppo...
Two-dimensional transition metal dichalcogenides (TMDs) hold great potential for future low-energy o...
Functional devices that use vertical van der Waals (vdWs) heterostructure material can effectively c...
Transition metal dichalcogenides (TMDs) are semiconducting two-dimensional (2D) materials with direc...
Vertical van der Waals heterostructures are formed when different 2D crystals are stacked on top of ...
In this thesis, field effect transistors (FETs), tunnel barrier transistors (TBTs), and photodetecto...
Engineering 2D transition metal dichalcogenides with precise control over layer number enable tuning...
Creating alternating layers of 2D materials forms vertical heterostructures with diverse electronic ...
The production of large area, high quality two-dimensional (2D) materials using chemical vapour depo...
Van der Waals heterostructures (vdWHSs) provide a unique playground to study fundamental physics and...
We study the interactions in graphene/WS2 2D layered vertical heterostructures with variations in th...
We study the interactions in graphene/WS<sub>2</sub> two-dimensional (2D) layered vertical heterostr...
A family of materials similar to graphene are transition metal dichalcogenides (TMDs) which have eme...
apid progress in the research of two-dimensional (2D) atomic crystals, such as graphene, monolayer a...
Graphene is undoubtedly emerging as one of the most promising nanomaterials because of its unique co...
Layer-by-layer stacking or lateral interfacing of atomic monolayers has opened up unprecedented oppo...
Two-dimensional transition metal dichalcogenides (TMDs) hold great potential for future low-energy o...
Functional devices that use vertical van der Waals (vdWs) heterostructure material can effectively c...
Transition metal dichalcogenides (TMDs) are semiconducting two-dimensional (2D) materials with direc...
Vertical van der Waals heterostructures are formed when different 2D crystals are stacked on top of ...
In this thesis, field effect transistors (FETs), tunnel barrier transistors (TBTs), and photodetecto...
Engineering 2D transition metal dichalcogenides with precise control over layer number enable tuning...