4.8 Article

Ultrafast Dynamics of Defect-Assisted Electron Hole Recombination in Mono layer MoS2

Journal

NANO LETTERS
Volume 15, Issue 1, Pages 339-345

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl503636c

Keywords

Auger; MoS2; defect; monolayer; recombination; ultrafast

Funding

  1. CCMR under NSF [DMR-1120296]
  2. AFOSR-MURI [FA9550-09-1-0705]
  3. ONR [N00014-12-1-0072]
  4. Cornell Center for Nanoscale Systems - NSF

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In this Letter, we present nondegenerate ultrafast optical pumpprobe studies of the carrier recombination dynamics in MoS2 monolayers. By tuning the probe to wavelengths much longer than the exciton line, we make the probe transmission sensitive to the total population of photoexcited electrons and holes. Our measurement reveals two distinct time scales over which the photoexcited electrons and holes recombine; a fast time scale that lasts similar to 2 ps and a slow time scale that lasts longer than similar to 100 ps. The temperature and the pump fluence dependence of the observed carrier dynamics are consistent with defect-assisted recombination as being the dominant mechanism for electronhole recombination in which the electrons and holes are captured by defects via Auger processes. Strong Coulomb interactions in two-dimensional atomic materials, together with strong electron and hole correlations in two-dimensional metal dichalcogenides, make Auger processes particularly effective for carrier capture by defects. We present a model for carrier recombination dynamics that quantitatively explains all features of our data for different temperatures and pump fluences. The theoretical estimates for the rate constants for Auger carrier capture are in good agreement with the experimentally determined values. Our results underscore the important role played by Auger processes in two-dimensional atomic materials.

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