Title
Massively Parallel First-Principles Simulation of Electron Dynamics in Materials.
Abstract
We present a highly scalable, parallel implementation of first-principles electron dynamics coupled with molecular dynamics (MD). By using optimized kernels, network topology aware communication, and by fully distributing all terms in the time-dependent KohnSham equation, we demonstrate unprecedented time to solution for disordered aluminum systems of 2000 atoms (22,000 electrons) and 5400 atoms (59,400 electrons), with wall clock time as low as 7.5s per MD time step. Despite a significant amount of non-local communication required in every iteration, we achieved excellent strong scaling and sustained performance on the Sequoia Blue Gene/Q supercomputer at LLNL. We obtained up to 59% of the theoretical sustained peak performance on 16,384 nodes and performance of 8.75Petaflop/s (43% of theoretical peak) on the full 98,304 node machine (1,572,864 cores). Scalable explicit electron dynamics allows for the study of phenomena beyond the reach of standard first-principles MD, in particular, materials subject to strong or rapid perturbations, such as pulsed electromagnetic radiation, particle irradiation, or strong electric currents. Highly scalable implementation of time-dependent Density Functional Theory with explicit electronic time integration.Excellent scalability and time to solution on 1.6 million Blue Gene/Q cores.Enables first-principles study of electronic stopping power and conductivity.
Year
DOI
Venue
2017
10.1016/j.jpdc.2017.02.005
J. Parallel Distrib. Comput.
Keywords
DocType
Volume
Electron dynamics,TDDFT,Explicit time integration,Blue Gene/Q
Journal
106
ISSN
Citations 
PageRank 
0743-7315
3
0.50
References 
Authors
10
6
Name
Order
Citations
PageRank
Erik W. Draeger1689.57
Xavier Andrade281.22
John A. Gunnels371783.20
Abhinav Bhatele462543.42
Andre Schleife551.24
Alfredo A. Correa650.91