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Sökning: WFRF:(Coletti S) > (2015-2019)

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1.
  • Thomas, HS, et al. (författare)
  • 2019
  • swepub:Mat__t
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4.
  • Aeschlimann, S., et al. (författare)
  • Ultrafast momentum imaging of pseudospin-flip excitations in graphene
  • 2017
  • Ingår i: Physical Review B. - 2469-9969 .- 2469-9950. ; 96:2
  • Tidskriftsartikel (refereegranskat)abstract
    • The pseudospin of Dirac electrons in graphene manifests itself in a peculiar momentum anisotropy for photoexcited electron-hole pairs. These interband excitations are in fact forbidden along the direction of the light polarization and are maximum perpendicular to it. Here, we use time-and angle-resolved photoemission spectroscopy to investigate the resulting unconventional hot carrier dynamics, sampling carrier distributions as a function of energy, and in-plane momentum. We first show that the rapidly-established quasithermal electron distribution initially exhibits an azimuth-dependent temperature, consistent with relaxation through collinear electron-electron scattering. Azimuthal thermalization is found to occur only at longer time delays, at a rate that depends on the substrate and the static doping level. Further, we observe pronounced differences in the electron and hole dynamics in n-doped samples. By simulating the Coulomb-and phonon-mediated carrier dynamics we are able to disentangle the influence of excitation fluence, screening, and doping, and develop a microscopic picture of the carrier dynamics in photoexcited graphene. Our results clarify new aspects of hot carrier dynamics that are unique to Dirac materials, with relevance for photocontrol experiments and optoelectronic device applications.
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5.
  • Forti, S., et al. (författare)
  • Mini-Dirac cones in the band structure of a copper intercalated epitaxial graphene superlattice
  • 2016
  • Ingår i: 2D Materials. - : IOP Publishing. - 2053-1583. ; 3:3
  • Tidskriftsartikel (refereegranskat)abstract
    • The electronic band structure of an epitaxial graphene superlattice, generated by intercalating a monolayer of Cu atoms, is directly imaged by angle-resolved photoelectron spectroscopy. The 3.2 nm lateral period of the superlattice is induced by a varying registry between the graphene honeycomb and the Cu atoms as imposed by the heteroepitaxial interface Cu/SiC. The carbon atoms experience a lateral potential across the supercell of an estimated value of about 65 meV. The potential leads to strong energy renormalization in the band structure of the graphene layer and the emergence of mini-Dirac cones. The mini-cones' band velocity is reduced to about half of graphene's Fermi velocity. Notably, the ordering of the interfacial Cu atoms can be reversibly blocked by mild annealing. The superlattice indeed disappears at∼220 °C.
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