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Updated: Mar 25, 2026

Multiscale Sampling of a Heterogeneous Water/Metal Catalyst Interface using Density Functional Theory and Force-Field Molecular Dynamics
Published on: April 12, 2019
Importance of Three-Body Interactions in Molecular Dynamics Simulations of Water Demonstrated with the Fragment
Spencer R Pruitt1, Hiroya Nakata2, Takeshi Nagata3
1Argonne Leadership Computing Facility, Argonne National Laboratory , 9700 S. Cass Avenue, Lemont, Illinois 60439, United States.
Abstract:
The analytic first derivative with respect to nuclear coordinates is formulated and implemented in the framework of the three-body fragment molecular orbital (FMO) method. The gradient has been derived and implemented for restricted second-order Møller-Plesset perturbation theory, as well as for both restricted and unrestricted Hartree-Fock and density functional theory. The importance of the three-body fully analytic gradient is illustrated through the failure of the two-body FMO method during molecular dynamics simulations of a small water cluster. The parallel implementation of the fragment molecular orbital method, its parallel efficiency, and its scalability on the Blue Gene/Q architecture up to 262,144 CPU cores are also discussed.
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