An a priori computational method for determining intensities in inelastic electron tunneling spectroscopy (IETS) is developed that allows simple, chemically intuitive propensity rules to be obtained for arbitrary applications. The molecule is shown to scatter charges between quite specific eigenchannels of lead-coupling-weighted molecular density of states. This allows mode-specific scattering sites to be identified within the molecule, indicating how external chemical or other perturbations could be used to control IETS intensities
From extensive simulations of a set of covalently grafted phenyl derivatives onto Cu(111), we derive...
Inelastic Electron Tunnelling Spectroscopy (IETS) [1-5] provides a means to characterise the phonon ...
The present research widens the effortless and competent lowest order expansion (LOE) for Inelastic ...
An a priori computational method for determining intensities in inelastic electron tunneling spectro...
Using a perturbative approach to simple model systems, we derive useful propensity rules for inelast...
We develop a series of propensity rules for interpreting inelastic electron tunneling (IET) spectra ...
Inelastic electron tunneling spectroscopy (IETS) is a powerful tool to study the properties of molec...
1.1 Why study inelastic electron tunneling spectroscopy? Inelastic electron tunneling spectroscopy (...
Inelastic resonances in the electron tunneling spectra of several conjugated molecules are simulated...
Using inelastic electron tunneling spectroscopy (IETS) to measure the vibronic structure of nonequil...
We address the line shape and line widths observed in recent inelastic electron tunneling spectrosco...
Even moderately small molecules like 2,2′:5′,2″- terthiophene exhibit quite rich vibrational spectra...
The probe of flexible molecular conformation is crucial for the electric application of molecular sy...
Inelastic electron tunneling spectroscopy (IETS) using metal}insulator}metal (MIM) tunnel junctions ...
We analyze how functionality could be obtained within single-molecule devices by using a combination...
From extensive simulations of a set of covalently grafted phenyl derivatives onto Cu(111), we derive...
Inelastic Electron Tunnelling Spectroscopy (IETS) [1-5] provides a means to characterise the phonon ...
The present research widens the effortless and competent lowest order expansion (LOE) for Inelastic ...
An a priori computational method for determining intensities in inelastic electron tunneling spectro...
Using a perturbative approach to simple model systems, we derive useful propensity rules for inelast...
We develop a series of propensity rules for interpreting inelastic electron tunneling (IET) spectra ...
Inelastic electron tunneling spectroscopy (IETS) is a powerful tool to study the properties of molec...
1.1 Why study inelastic electron tunneling spectroscopy? Inelastic electron tunneling spectroscopy (...
Inelastic resonances in the electron tunneling spectra of several conjugated molecules are simulated...
Using inelastic electron tunneling spectroscopy (IETS) to measure the vibronic structure of nonequil...
We address the line shape and line widths observed in recent inelastic electron tunneling spectrosco...
Even moderately small molecules like 2,2′:5′,2″- terthiophene exhibit quite rich vibrational spectra...
The probe of flexible molecular conformation is crucial for the electric application of molecular sy...
Inelastic electron tunneling spectroscopy (IETS) using metal}insulator}metal (MIM) tunnel junctions ...
We analyze how functionality could be obtained within single-molecule devices by using a combination...
From extensive simulations of a set of covalently grafted phenyl derivatives onto Cu(111), we derive...
Inelastic Electron Tunnelling Spectroscopy (IETS) [1-5] provides a means to characterise the phonon ...
The present research widens the effortless and competent lowest order expansion (LOE) for Inelastic ...