Login / Signup

Electrical Switching of the Off-Resonance Room-Temperature Valley Polarization in Monolayer MoS 2 by a Double-Resonance Chiral Microstructure.

Lei HuangXiaofan ZhuGuohua HuChunyu DengYu SunDongyu WangMengjia LuBinfeng YunRuohu ZhangYan ZhangYi-Ping Cui
Published in: ACS applied materials & interfaces (2022)
Enhancing and expanding the manipulated range of room-temperature valley polarization at off-resonance wavelength is extremely crucial to developing various functional valleytronic devices. Although these have been realized through the double-resonance strategy or twist-angle engineering, the demand for electrical control over the concepts remains elusive. Here, we fabricate a gate-tunable double-resonance chiral microstructure using a molybdenum disulfides (MoS 2 ) monolayer. On the basis of the varied interface charge density, we demonstrate the huge photoluminescence (PL) tuning ability of this configuration. Furthermore, benefiting predominately from the screening of long-range e-h exchange interactions and the chiral Purcell effect, the electrical switching of the room-temperature valley polarization at off-resonance wavelength is also realized. Our work enriches the functions of TMDs-based optoelectronic devices and may create important applications in future valley-polarized encode and information processing devices.
Keyphrases
  • room temperature
  • energy transfer
  • ionic liquid
  • quantum dots
  • white matter
  • healthcare
  • multiple sclerosis
  • high resolution
  • epithelial mesenchymal transition
  • current status
  • solar cells