Linear-scaling density-functional simulations of charged point defects in Al2O3 using hierarchical sparse matrix algebra
We present calculations of formation energies of defects in an ionic solid (Al(2)O(3)) extrapolated to the dilute limit, corresponding to a simulation cell of infinite size. The large-scale calculations required for this extrapolation are enabled by developments in the approach to parallel sparse ma...
Saved in:
Published in | The Journal of chemical physics Vol. 133; no. 11; p. 114111 |
---|---|
Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
United States
21.09.2010
|
Online Access | Get more information |
Cover
Loading…
Summary: | We present calculations of formation energies of defects in an ionic solid (Al(2)O(3)) extrapolated to the dilute limit, corresponding to a simulation cell of infinite size. The large-scale calculations required for this extrapolation are enabled by developments in the approach to parallel sparse matrix algebra operations, which are central to linear-scaling density-functional theory calculations. The computational cost of manipulating sparse matrices, whose sizes are determined by the large number of basis functions present, is greatly improved with this new approach. We present details of the sparse algebra scheme implemented in the ONETEP code using hierarchical sparsity patterns, and demonstrate its use in calculations on a wide range of systems, involving thousands of atoms on hundreds to thousands of parallel processes. |
---|---|
ISSN: | 1089-7690 |
DOI: | 10.1063/1.3492379 |