Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/9119
Title: Spherical harmonics based descriptor for neural network potentials: Structure and dynamics of Au147 nanocluster
Authors: Jindal, Shweta
Bulusu, Satya Silendra
Keywords: Computation theory;Global optimization;Gold compounds;Harmonic analysis;Molecular dynamics;Nanoclusters;Neural networks;Potential energy;Quantum chemistry;Quantum theory;Reaction kinetics;Accurate calculations;Computational time;Empirical potentials;Molecular dynamics simulations;Orders of magnitude;Reaction dynamics;Spherical harmonics;Structure and dynamics;Density functional theory;article;density functional theory;geometry;isomer;molecular dynamics
Issue Date: 2017
Publisher: American Institute of Physics Inc.
Citation: Jindal, S., Chiriki, S., & Bulusu, S. S. (2017). Spherical harmonics based descriptor for neural network potentials: Structure and dynamics of Au147 nanocluster. Journal of Chemical Physics, 146(20) doi:10.1063/1.4983392
Abstract: We propose a highly efficient method for fitting the potential energy surface of a nanocluster using a spherical harmonics based descriptor integrated with an artificial neural network. Our method achieves the accuracy of quantum mechanics and speed of empirical potentials. For large sized gold clusters (Au147), the computational time for accurate calculation of energy and forces is about 1.7 s, which is faster by several orders of magnitude compared to density functional theory (DFT). This method is used to perform the global minimum optimizations and molecular dynamics simulations for Au147, and it is found that its global minimum is not an icosahedron. The isomer that can be regarded as the global minimum is found to be 4 eV lower in energy than the icosahedron and is confirmed from DFT. The geometry of the obtained global minimum contains 105 atoms on the surface and 42 atoms in the core. A brief study on the fluxionality in Au147 is performed, and it is concluded that Au147 has a dynamic surface, thus opening a new window for studying its reaction dynamics. © 2017 Author(s).
URI: https://doi.org/10.1063/1.4983392
https://dspace.iiti.ac.in/handle/123456789/9119
ISSN: 0021-9606
Type of Material: Journal Article
Appears in Collections:Department of Chemistry

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