TY - JOUR
T1 - Time-dependent quantum simulation of coronene photoemission spectra
AU - Acocella, Angela
AU - de Simone, Monica
AU - Evangelista, Fabrizio
AU - Coreno, Marcello
AU - Rudolf, Petra
AU - Zerbetto, Francesco
PY - 2016/5/21
Y1 - 2016/5/21
N2 - Photoelectron spectroscopy is usually described by a simple equation that relates the binding energy of the photoemitted electron, E-binding, its kinetic energy, E-kinetic, the energy of the ionizing photon, E-photon, and the work function of the spectrometer, phi, E-binding = E-photon - E-kinetic - phi. Behind this equation there is an extremely rich physics, which we describe here using as an example a relatively simple conjugated molecule, namely coronene. The theoretical analysis of valence band and C1s core level photoemission spectra showed that multiple excitations play an important role in determining the intensities of the final spectrum. An explicit, time-evolving model is applied, which is able to count all possible photo-excitations occurring during the photoemission process, showing that they evolve on a short time-scale, of about 10 fs. The method reveals itself to be a valid approach to reproduce photoemission spectra of polycyclic aromatic hydrocarbons (PAHs).
AB - Photoelectron spectroscopy is usually described by a simple equation that relates the binding energy of the photoemitted electron, E-binding, its kinetic energy, E-kinetic, the energy of the ionizing photon, E-photon, and the work function of the spectrometer, phi, E-binding = E-photon - E-kinetic - phi. Behind this equation there is an extremely rich physics, which we describe here using as an example a relatively simple conjugated molecule, namely coronene. The theoretical analysis of valence band and C1s core level photoemission spectra showed that multiple excitations play an important role in determining the intensities of the final spectrum. An explicit, time-evolving model is applied, which is able to count all possible photo-excitations occurring during the photoemission process, showing that they evolve on a short time-scale, of about 10 fs. The method reveals itself to be a valid approach to reproduce photoemission spectra of polycyclic aromatic hydrocarbons (PAHs).
KW - DENSITY-FUNCTIONAL THEORY
KW - POLYCYCLIC AROMATIC-HYDROCARBONS
KW - NONADIABATIC ELECTRON-EXCITATION
KW - INTENSE LASER FIELDS
KW - ABOVE-THRESHOLD DISSOCIATION
KW - CONTINUUM WAVE-FUNCTIONS
KW - TRANSFER EXCITED-STATES
KW - LONG-WAVELENGTH LIMIT
KW - COSMIC WATER ICE
KW - AB-INITIO
U2 - 10.1039/c5cp06455d
DO - 10.1039/c5cp06455d
M3 - Article
SN - 1463-9076
VL - 18
SP - 13604
EP - 13615
JO - PPCP : Physical Chemistry Chemical Physics
JF - PPCP : Physical Chemistry Chemical Physics
IS - 19
ER -