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Born–Oppenheimer Molecular Dynamics with a Linear Combination of Atomic Orbitals and Hybrid Functionals for Condensed Matter Simulations Made Possible. Theory and Performance for the Microcanonical and Canonical Ensembles

Articolo
Data di Pubblicazione:
2024
Abstract:
The implementation of an original Born-Oppenheimer molecular dynamics module is presented, which is able to perform simulations of large and complex condensed phase systems for sufficiently long time scales at the level of density functional theory with hybrid functionals, in the microcanonical (NVE) and canonical (NVT) ensembles. The algorithm is fully integrated in the Crystal code, a program for quantum mechanical simulations of materials, whose peculiarity stems from the use of atom-centered basis functions within a linear combination of atomic orbitals to describe the wave function. The corresponding efficiency in the evaluation of the exact Fock exchange series has led to the implementation of a rich variety of hybrid density functionals at a low computational cost. In addition, the molecular dynamics implementation benefits also from the effective MPI parallelization of the code, suited to exploit high-performance computing resources available on current generation supercomputer architectures. Furthermore, the information contained in the trajectory of the dynamics is extracted through a series of postprocessing algorithms that provide the radial distribution function, the diffusion coefficient and the vibrational density of states. In this work, we present a detailed description of the theoretical framework and the algorithmic implementation, followed by a critical evaluation of the accuracy and parallel performance (e.g., strong and weak scaling) of this approach, when ice and liquid water simulations are performed in the microcanonical and canonical ensembles.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
ab initio molecular dynamics, hybrids, DFT, solid state chemistry
Elenco autori:
Ribaldone, Chiara; Casassa, Silvia
Autori di Ateneo:
CASASSA Silvia Maria
RIBALDONE CHIARA
Link alla scheda completa:
https://iris.unito.it/handle/2318/2049850
Pubblicato in:
JOURNAL OF CHEMICAL THEORY AND COMPUTATION
Journal
  • Dati Generali
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Dati Generali

URL

https://pubs.acs.org/doi/abs/10.1021/acs.jctc.3c01231

Aree Di Ricerca

Settori (5)


PE3_4 - Electronic properties of materials, surfaces, interfaces, nanostructures - (2024)

PE4_13 - Theoretical and computational chemistry - (2024)

INFORMATICA, AUTOMAZIONE e INTELLIGENZA ARTIFICIALE - Informatica per la Chimica

PIANETA TERRA, AMBIENTE, CLIMA, ENERGIA e SOSTENIBILITA' - Energia e Fonti Energetiche

SCIENZE MATEMATICHE, CHIMICHE, FISICHE - Materiali Avanzati
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