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Identification of Exciton Complexes in Charge-Tunable Janus W Se S Monolayers.

Matthew S G FeuerAlejandro R-P MontblanchMohammed Y SayyadCarola M PurserYing QinEvgeny M AlexeevAlisson R CadoreBarbara L T RosaJames KerfootElaheh MostaaniRadosław KalȩbaPranvera KolariJan KopaczekKenji WatanabeTakashi TaniguchiAndrea C FerrariDhiren M KaraSefaattin TongayMete Atatüre
Published in: ACS nano (2023)
Janus transition-metal dichalcogenide monolayers are artificial materials, where one plane of chalcogen atoms is replaced by chalcogen atoms of a different type. Theory predicts an in-built out-of-plane electric field, giving rise to long-lived, dipolar excitons, while preserving direct-bandgap optical transitions in a uniform potential landscape. Previous Janus studies had broad photoluminescence (>18 meV) spectra obfuscating their specific excitonic origin. Here, we identify the neutral and the negatively charged inter- and intravalley exciton transitions in Janus W Se S monolayers with ∼6 meV optical line widths. We integrate Janus monolayers into vertical heterostructures, allowing doping control. Magneto-optic measurements indicate that monolayer W Se S has a direct bandgap at the K points. Our results pave the way for applications such as nanoscale sensing, which relies on resolving excitonic energy shifts, and the development of Janus-based optoelectronic devices, which requires charge-state control and integration into vertical heterostructures.
Keyphrases
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