A modified Ehrenfest formalism for efficient large-scale ab initio molecular dynamics
Xavier Andrade, Alberto Castro, David Zueco, J. L. Alonso, Pablo, Echenique, Fernando Falceto, Angel Rubio

TL;DR
This paper introduces a modified Ehrenfest formalism for large-scale ab initio molecular dynamics that enhances efficiency and scalability, enabling simulations of systems with thousands of atoms without orthogonalization bottlenecks.
Contribution
The authors develop a new AIMD scheme that preserves Ehrenfest properties, increases time steps, and improves large-system scaling by incorporating automatic orthogonalization.
Findings
Enhanced large-scale AIMD efficiency
Better scaling with system size
Advantage over Car-Parrinello method for large systems
Abstract
We present in detail the recently derived ab-initio molecular dynamics (AIMD) formalism [Phys. Rev. Lett. 101 096403 (2008)], which due to its numerical properties, is ideal for simulating the dynamics of systems containing thousands of atoms. A major drawback of traditional AIMD methods is the necessity to enforce the orthogonalization of the wave-functions, which can become the bottleneck for very large systems. Alternatively, one can handle the electron-ion dynamics within the Ehrenfest scheme where no explicit orthogonalization is necessary, however the time step is too small for practical applications. Here we preserve the desirable properties of Ehrenfest in a new scheme that allows for a considerable increase of the time step while keeping the system close to the Born-Oppenheimer surface. We show that the automatically enforced orthogonalization is of fundamental importance for…
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