Abstract
The sufficient control of the carrier density of a single layer WS2 (1L-WS2) has been realized by the pulsed laser irradiation doping technique. Chlorine atoms are incorporated on the surface of the atomically thin lattice in a precursor gas atmosphere. In this work, we demonstrate spin-valley polarization tunability by more than 40% in 1L-WS2 on hBN via photochlorination. Polarization photoluminescence spectroscopy was performed in the temperature range from 4 K to 300 K. The decrease in circular polarization after the photochlorination treatment is attributed to the significant reduction of the active defect sites in 1L-WS2 and, consequently, to the increase in the non-radiative exciton lifetime. Ultrafast time-resolved transient absorption spectroscopy measurements support our findings. The above results indicate a useful approach of controlling the density of the active defect sites and the valley polarized light emission in doped monolayer crystal lattices.
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CITATION STYLE
Demeridou, I., Papadopoulos, A., Kourmoulakis, G., Mouchliadis, L., Stratakis, E., & Kioseoglou, G. (2021). Tuning the valley polarization in WS2 monolayers via control of active defect sites induced by photochemical doping. Applied Physics Letters, 118(12). https://doi.org/10.1063/5.0037423
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