Exciton Manipulation in 2D TMDC Heterostructures
· Invited
Abstract
The discovery of graphene marked the start of research in 2D electronic materials which was expanded in new directions with MoS2 and other layered semiconducting materials. They have a wide range of interesting fundamental properties and potential applications. New opportunities are enabled by the band structure of transition metal dichalcogenides (TMDCs) in which we could harness the valley degree of freedom for valleytronics and next-generation photonics. Long-lived interlayer excitons in van der Waals heterostructures based on TMDCs have recently emerged as a promising platform for this, allowing control over exciton diffusion length, energy and polarization. I will show here how by using MoS2/WSe2 van der Waals heterostructures, we can realize excitonic transistors with switching action, confinement and control over diffusion length at room temperature in a reconfigurable potential landscape. Heterostructures with a long-range moiré potential such as in MoSe2/WSe2, on the other hand, offer the way to control polarization, emission and wavelength emitted by different optically active regions in the moiré.
*We acknowledge support by the Swiss National Science Foundation (Grant 153298), H2020 European Research Council (ERC, Grant 682332), Marie Curie-Sklodowska-Curie Actions (COFUND grant 665667), European Union’s Horizon H2020 Future and Emerging Technologies under grant agreements No 696656 and 785219 (Graphene Flagship).
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Presenters
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Andras Kis
- Ecole polytechnique federale de Lausanne
- EPFL, Lausanne, Switzerland