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Parameter-free calculations of X-ray spectra with FEFF9

Physical Chemistry Chemical Physics · 2010 · Vol. 12(21) · pp. 5503–5503
J. J. RehrJ. J. KasFernando D. VilaMicah P. PrangeKevin Jorissen

Abstract

We briefly review our implementation of the real-space Green's function (RSGF) approach for calculations of X-ray spectra, focusing on recently developed parameter free models for dominant many-body effects. Although the RSGF approach has been widely used both for near edge (XANES) and extended (EXAFS) ranges, previous implementations relied on semi-phenomenological methods, e.g., the plasmon-pole model for the self-energy, the final-state rule for screened core hole effects, and the correlated Debye model for vibrational damping. Here we describe how these approximations can be replaced by efficient ab initio models including a many-pole model of the self-energy, inelastic losses and multiple-electron excitations; a linear response approach for the core hole; and a Lanczos approach for Debye-Waller effects. We also discuss the implementation of these models and software improvements within the FEFF9 code, together with a number of examples.

X-ray Spectroscopy and Fluorescence AnalysisElectron and X-Ray Spectroscopy TechniquesAdvanced Chemical Physics StudiesLanczos resamplingPhysicsAb initioSpectral lineXANESStatistical physicsComputational physicsLanczos algorithmPlasmonQuantum mechanics

MeSH terms

SoftwareX-Ray Absorption Spectroscopy
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Physical review. B, Solid state · 1975 · 1,044 citations
Accurate and simple analytic representation of the electron-gas correlation energy
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Parameter-free calculations of X-ray spectra with FEFF9 · Scinovex