Role of molecular electronic structure in IETS: the case of O_2 on Ag(110)
S. Monturet, M. Alducin, and N. Lorente

TL;DR
This study uses advanced DFT simulations to analyze how molecular electronic structure influences IETS signals of O_2 on Ag(110), revealing the importance of spin polarization and vibrational modes in interpreting experimental data.
Contribution
It demonstrates the necessity of including Coulomb repulsion U in DFT to accurately reproduce IETS features of O_2 on Ag(110), highlighting the role of electronic and vibrational symmetries.
Findings
Reproduced negative conductance variation in vibrational spectra.
Mapped spatial distribution of conductance changes for specific vibrations.
Showed IETS signals depend on electronic resonance and vibrational modes.
Abstract
Density functional theory (DFT) simulations corrected by the intramolecular Coulomb repulsion U, are performed to evaluate the vibrational inelastic electron tunneling spectroscopy (IETS) of O_2 molecules on Ag(110). Semilocal DFT calculations predict a spinless adsorbed molecule, however the inclusion of the U leads to the polarization of the molecule by shifting a spin-polarized molecular orbital towards the Fermi level. A molecular resonance at the Fermi level can imply a decrease in conductance while in the off-resonance case, an increase in conductance is the expected IETS signal. We use the lowest-order expansion on the electron-vibration coupling, in order to evaluate the magnitude and spatial distribution of the inelastic signal. This allows us to reproduce the experimental data in: (i) the negative conductance variation observed in the vibrational spectra of O_2 along the [001]…
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Taxonomy
TopicsMolecular Junctions and Nanostructures · Advanced Chemical Physics Studies · Advanced Physical and Chemical Molecular Interactions
