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Charge Carrier Dynamics in Colloidally Synthesized Monolayer MoX 2 Nanosheets.

Chandra Sekhar MGabriele PippiaIvo TangheBeatriz Martín-GarcíaAnastasia RousakiPeter VandenabeelePieter SchiettecatteIwan MoreelsPieter Geiregat
Published in: The journal of physical chemistry letters (2023)
Transition metal dichalcogenides (TMDs) are nanostructured semiconductors with prospects in optoelectronics and photocatalysis. Several bottom-up procedures to synthesize such materials have been developed yielding colloidal transition metal dichalcogenides (c-TMDs). Where such methods initially yielded multilayered sheets with indirect band gaps, recently, also the formation of monolayered c-TMDs became possible. Despite these advances, no clear picture on the charge carrier dynamics in monolayer c-TMDs exists to date. Here, we show through broadband and multiresonant pump-probe spectroscopy, that the carrier dynamics in monolayer c-TMDs are dominated by a fast electron trapping mechanism, universal to both MoS 2 and MoSe 2 , contrasting hole-dominated trapping in their multilayered counterparts. Through a detailed hyperspectral fitting procedure, sizable exciton red shifts are found and assigned to static shifts originating from both interactions with the trapped electron population and lattice heating. Our results pave the way to optimizing monolayer c-TMDs via passivation of predominantly the electron-trap sites.
Keyphrases
  • transition metal
  • solar cells
  • quantum dots
  • high resolution
  • minimally invasive
  • perovskite solar cells
  • electron microscopy
  • gold nanoparticles
  • electron transfer
  • ionic liquid
  • metal organic framework
  • energy transfer