Papers for

battery development teams

Papers whose findings have a practical use for this group, as judged from the abstract. Open a paper to read what it means in practice.

Extreme-scale quantum simulations of materials reach 100 million atoms

Extreme-Scale Linear-Scaling Kohn-Sham DFT at 100 Million Atoms: Bridging Quantum Simulations and Experiments

Abstract: Kohn-Sham density functional theory (DFT) remains the workhorse of ab initio materials simulation, yet cubic computational and quadratic memory scaling have confined calculations to a few hundred to thousands of atoms, spanning only nanometers, far below experimentally relevant length scales. We introduce XLSDFT, a linear-scaling DFT framework based on divide-and-conquer decomposition of the one-particle density matrix and Chebyshev-filtered subspace iteration, achieving linear computational and memory scaling while retaining DFT accuracy. Deployed on the LineShine exascale supercomputer, XLSDFT reduces computational complexity by orders of magnitude, enabling unprecedented DFT scale: a 200-million-atom silicon crystal, twentyfold beyond the prior record. Our implementation achieves 96.6% weak-scaling efficiency and sustained 157.9 Pflop/s (FP64) for a 100-million-atom scaling study. We further simulate an 11-million-atom all-solid-state battery interface of unprecedented complexity, 1,000 times beyond prior DFT for such systems, revealing how lithium metal reacts with the solid electrolyte at atomic resolution, in quantitative agreement with spectroscopy experiments.

Fri 11 SeptComputational Engineering, Finance, and ScienceDistributed, Parallel, and Cluster Computing
The gist
Simulating materials at the level of individual atoms is usually very slow and limited to tiny pieces. The authors created a new method called XLSDFT that speeds up these simulations dramatically while keeping them accurate. They used this to simulate a silicon crystal with 200 million atoms and a complex battery interface with over 11 million atoms, much bigger than before. Their simulations matched real experiments, helping us understand how lithium interacts with battery materials at the atomic level.
Open 2609.13115v1