Inducing room-temperature valley polarization in transition metal dichalcogenide monolayers

Research output: Contribution to conference without publisher/journalPosterResearch

Abstract

The lowest energy states in transition metal dichalcogenide (TMD) monolayers follow valley selection rules, which have attracted vast interest due to the possibility of encoding and processing of quantum information. However, these quantum states are strongly affected by temperature-dependent intervalley scattering leading to complete valley depolarization, which hampers any practical applications of TMD monolayers at room temperature. Therefore, for achieving clear and robust valley polarization in TMD monolayers one needs to suppress parasitic depolarization processes, which is the central challenge in the growing field of valleytronics. Here, in electron-doping experiments on TMD monolayers, we demonstrate that strong doping levels beyond 10^13 cm-2 can induce 61% and 37% valley contrast at room temperature in tungsten diselenide and molybdenum diselenide monolayers, respectively. Our results indicate that charged excitons in TMD monolayers can be utilized as quantum units in designing of practical valleytronic devices operating at 300 K.
Original languageEnglish
Publication date22. Nov 2023
DOIs
Publication statusPublished - 22. Nov 2023
EventNANOP 2023: Functional Nanophotonics - Pompeu Fabra University – Balmes building, Barcelona, Spain
Duration: 27. Nov 202329. Nov 2023
https://premc.org/conferences/nanop-nanophotonics-micro-nano-optics/

Conference

ConferenceNANOP 2023: Functional Nanophotonics
LocationPompeu Fabra University – Balmes building
Country/TerritorySpain
CityBarcelona
Period27/11/202329/11/2023
Internet address

Keywords

  • transition metal dichalcogenide monolayer
  • charge doping
  • 2D charged excitons
  • valley polarization
  • valleytronics
  • spectroelectrochemistry
  • circular polarization
  • quantum optics

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