English

Resonant Lifetime of Core-Excited Organic Adsorbates from First Principles

Materials Science 2014-04-23 v1 Mesoscale and Nanoscale Physics Chemical Physics Computational Physics

Abstract

We investigate by first-principles simulations the resonant electron-transfer lifetime from the excited state of an organic adsorbate to a semiconductor surface, namely isonicotinic acid on rutile TiO2_2(110). The molecule-substrate interaction is described using density functional theory, while the effect of a truly semi-infinite substrate is taken into account by Green's function techniques. Excitonic effects due to the presence of core-excited atoms in the molecule are shown to be instrumental to understand the electron-transfer times measured using the so-called core-hole-clock technique. In particular, for the isonicotinic acid on TiO2_2(110), we find that the charge injection from the LUMO is quenched since this state lies within the substrate band gap. We compute the resonant charge-transfer times from LUMO+1 and LUMO+2, and systematically investigate the dependence of the elastic lifetimes of these states on the alignment among adsorbate and substrate states.

Keywords

Cite

@article{arxiv.1404.5595,
  title  = {Resonant Lifetime of Core-Excited Organic Adsorbates from First Principles},
  author = {Guido Fratesi and Carlo Motta and Maria Italo Trioni and Gian Paolo Brivio and Daniel Sanchez-Portal},
  journal= {arXiv preprint arXiv:1404.5595},
  year   = {2014}
}

Comments

24 pages, 6 figures, to appear in Journal of Physical Chemistry C