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Resonant Auger spectroscopy study of charge transfer phenomena in N 1s core-excited acetonitrile adsorbates on Si(0 0 1)-2 × 1
Authors:J.-J. Gallet  S. Carniato  F. Rochet  S. Rangan
Affiliation:a Université Pierre et Marie Curie, Laboratoire de Chimie Physique, Matière et Rayonnement, 75231 Paris cedex 05, France
b Rutgers University, Department of Physics and Astronomy, 136 Frelinghuysen Road, Piscataway, NJ08854, USA
c Synchrotron SOLEIL, L’Orme des Merisiers, Saint-Aubin, Bo?ˆtePostale 48, 91192 Gif sur YvetteCedex, France
Abstract:
Acetonitrile (CH3CN) adsorbs on Si(0 0 1)-2 × 1 at room temperature under two forms, a cycloaddition-like adduct (Si-Cdouble bond; length as m-dashN-Si) and a pendent cyano (Si-CH2-Ctriple bond; length of mdashN) resulting from the decomposition of the molecule. Resonant Auger spectroscopy has been used to study the excited-state-dependent electron transfer from the N 1s core-excited molecular adsorbate to the silicon substrate, using the core-hole lifetime (∼6 fs) as an internal clock. It is shown that the πCdouble bond; length as m-dashN NEXAFS state lies within the silicon bandgap because of a core-excitonic effect. Therefore no charge transfer of the excited electron to the substrate is observed. On the other hand the πCtriple bond; length of mdashN NEXAFS state is placed within the silicon conduction band. Excitation to this orbital leads to valence/Auger spectra in which both resonant and normal Auger contributions are observed. Therefore there is evidence for a charge transfer from the pendent Ctriple bond; length of mdashN to the silicon surface, on a timescale estimated to tens of femtoseconds.
Keywords:Silicon   Organo-functionalization of surfaces   NEXAFS   Auger spectroscopy   Synchrotron radiation photoelectron spectroscopy   Excitons and excited surface states   Femtosecond electron transfer   Density functional calculations
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