Two-dimensional chalcogenide semiconductors have recently emerged as a host material for quantum emitters of single photons. While several reports on defect and strain-induced single photon emission from 2D chalcogenides exist, a bottom-up, lithography-free approach to producing a high density of emitters remains elusive. Further, the physical properties of quantum emission in the case of strained 2D semiconductors are far from being understood. Here, we demonstrate a bottom-up, scalable, and lithography-free approach to creating large areas of localized emitters with high density (~150 emitters/um2) in a WSe2 monolayer. We induce strain inside the WSe2 monolayer with high spatial density by conformally placing the WSe2 monolayer over a uni...
Two-dimensional transition metal dichalcogenide semiconductors are intriguing hosts for quantum ligh...
Plasmonic nanostructures provide an efficient way to control and enhance the radiative properties of...
The article processing charge was funded by the Deutsche Forschungsgemeinschaft (DFG, German Researc...
Two-dimensional chalcogenide semiconductors have recently emerged as a host material for quantum emi...
The discovery of quantum emitters in two-dimensional materials has triggered a surge of research to ...
The appearance of single photon sources in atomically thin semiconductors holds great promises for t...
The appearance of single photon sources in atomically thin semiconductors holds great promises for t...
Funding: State of Bavaria; H2020 European Research Council (ERC) (Project Unlimit-2D).Atomic monolay...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
Atomically-thin semiconductors offer intriguing technological advantages for quantum photonic applic...
Atomic monolayers of transition metal dichalcogenides represent an emerging material platform for th...
Single-photon sources are important building blocks for quantum information technology. Emitters bas...
ABSTRACT: Two-dimensional transition metal dichalcoge-nide semiconductors are intriguing hosts for q...
Department of PhysicsAbstract Quantum light arises as a key hardware to construct quantum informati...
In recent years, quantum-dot-like single-photon emitters in atomically thin van der Waals materials ...
Two-dimensional transition metal dichalcogenide semiconductors are intriguing hosts for quantum ligh...
Plasmonic nanostructures provide an efficient way to control and enhance the radiative properties of...
The article processing charge was funded by the Deutsche Forschungsgemeinschaft (DFG, German Researc...
Two-dimensional chalcogenide semiconductors have recently emerged as a host material for quantum emi...
The discovery of quantum emitters in two-dimensional materials has triggered a surge of research to ...
The appearance of single photon sources in atomically thin semiconductors holds great promises for t...
The appearance of single photon sources in atomically thin semiconductors holds great promises for t...
Funding: State of Bavaria; H2020 European Research Council (ERC) (Project Unlimit-2D).Atomic monolay...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
Atomically-thin semiconductors offer intriguing technological advantages for quantum photonic applic...
Atomic monolayers of transition metal dichalcogenides represent an emerging material platform for th...
Single-photon sources are important building blocks for quantum information technology. Emitters bas...
ABSTRACT: Two-dimensional transition metal dichalcoge-nide semiconductors are intriguing hosts for q...
Department of PhysicsAbstract Quantum light arises as a key hardware to construct quantum informati...
In recent years, quantum-dot-like single-photon emitters in atomically thin van der Waals materials ...
Two-dimensional transition metal dichalcogenide semiconductors are intriguing hosts for quantum ligh...
Plasmonic nanostructures provide an efficient way to control and enhance the radiative properties of...
The article processing charge was funded by the Deutsche Forschungsgemeinschaft (DFG, German Researc...