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Single charge control of localized excitons in heterostructures with ferroelectric thin films and two-dimensional transition metal dichalcogenides.

Danjie DaiXinyan WangJingnan YangJianchen DangYu YuanBowen FuXin XieLonglong YangShan XiaoShushu ShiSai YanRui ZhuZhanchun ZuoCan WangKui-Juan JinQihuang GongXiulai Xu
Published in: Nanoscale (2022)
Single charge control of localized excitons (LXs) in two-dimensional transition metal dichalcogenides (TMDCs) is crucial for potential applications in quantum information processing and storage. However, traditional electrostatic doping method by applying metallic gates onto TMDCs may cause inhomogeneous charge distribution, optical quenching, and energy loss. Herein, by locally controlling the ferroelectric polarization of the ferroelectric thin film BiFeO 3 (BFO) with a scanning probe, we can deterministically manipulate the doping type of monolayer WSe 2 to achieve p-type and n-type doping. This nonvolatile approach can maintain the doping type and hold the localized excitonic charges for a long time without applied voltage. Our work demonstrated that the ferroelectric polarization of BFO can control the charges of LXs effectively. Neutral and charged LXs have been observed in different ferroelectric polarization regions, confirmed by magnetic optical measurement. Highly circular polarization degree with 90% photon emission from these quantum emitters was achieved in high magnetic fields. Controlling the single charge of LXs in a non-volatile way shows a great potential for deterministic photon emission with desired charge states for photonic long-term memory.
Keyphrases
  • transition metal
  • solar cells
  • high resolution
  • living cells
  • healthcare
  • energy transfer
  • risk assessment
  • room temperature
  • health information
  • liquid chromatography
  • ionic liquid
  • solid phase extraction