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Anisotropic attosecond charge carrier dynamics and layer decoupling in quasi-2D layered SnS2

Author

Listed:
  • Calley N. Eads

    (University of Arizona)

  • Dmytro Bandak

    (University of Arizona)

  • Mahesh R. Neupane

    (US Army Research Laboratory)

  • Dennis Nordlund

    (Stanford Synchrotron Radiation Lightsource)

  • Oliver L. A. Monti

    (University of Arizona
    University of Arizona)

Abstract

Strong quantum confinement effects lead to striking new physics in two-dimensional materials such as graphene or transition metal dichalcogenides. While spectroscopic fingerprints of such quantum confinement have been demonstrated widely, the consequences for carrier dynamics are at present less clear, particularly on ultrafast timescales. This is important for tailoring, probing, and understanding spin and electron dynamics in layered and two-dimensional materials even in cases where the desired bandgap engineering has been achieved. Here we show by means of core–hole clock spectroscopy that SnS2 exhibits spin-dependent attosecond charge delocalization times (τ deloc) for carriers confined within a layer, τ deloc 2.7 fs. These layer decoupling dynamics are a direct consequence of strongly anisotropic screening established within attoseconds, and demonstrate that important two-dimensional characteristics are also present in bulk crystals of van der Waals-layered materials, at least on ultrafast timescales.

Suggested Citation

  • Calley N. Eads & Dmytro Bandak & Mahesh R. Neupane & Dennis Nordlund & Oliver L. A. Monti, 2017. "Anisotropic attosecond charge carrier dynamics and layer decoupling in quasi-2D layered SnS2," Nature Communications, Nature, vol. 8(1), pages 1-7, December.
  • Handle: RePEc:nat:natcom:v:8:y:2017:i:1:d:10.1038_s41467-017-01522-3
    DOI: 10.1038/s41467-017-01522-3
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