Published May 18, 2016 | Version v1
Journal article

Simulation of electron energy loss spectra of nanomaterials with linear-scaling density functional theory

  • 1. Theory of Condensed Matter Group, Cavendish Laboratory, 19 J J Thomson Avenue, Cambridge, CB3 0HE (United Kingdom)
  • 2. Leadership Computing Facility, Argonne National Laboratory, 9700 South Cass Avenue, Building 240, Argonne, IL 60439 (United States)
  • 3. Department of Materials, Imperial College London, Exhibition Road, London, SW7 2AZ (United Kingdom)
  • 4. Theory Group, Department of Physics, University of Warwick, Coventry, CV4 7AL (United Kingdom)

Description

Experimental techniques for electron energy loss spectroscopy (EELS) combine high energy resolution with high spatial resolution. They are therefore powerful tools for investigating the local electronic structure of complex systems such as nanostructures, interfaces and even individual defects. Interpretation of experimental electron energy loss spectra is often challenging and can require theoretical modelling of candidate structures, which themselves may be large and complex, beyond the capabilities of traditional cubic-scaling density functional theory. In this work, we present functionality to compute electron energy loss spectra within the onetep linear-scaling density functional theory code. We first demonstrate that simulated spectra agree with those computed using conventional plane wave pseudopotential methods to a high degree of precision. The ability of onetep to tackle large problems is then exploited to investigate convergence of spectra with respect to supercell size. Finally, we apply the novel functionality to a study of the electron energy loss spectra of defects on the (1 0 1) surface of an anatase slab and determine concentrations of defects which might be experimentally detectable. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0953-8984/28/19/195202

Additional details

Publishing Information

Journal Title
Journal of Physics. Condensed Matter
Journal Volume
28
Journal Issue
19
Journal Page Range
[10 p.]
ISSN
0953-8984
CODEN
JCOMEL