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The ENUF method—Ewald summation based on nonuniform fast Fourier transform: Implementation, parallelization, and application
School of Computer Science, Northeast Electric Power University, Jilin, China.
School of Chemical Engineering and Technology, Sun Yat‐sen University, Zhuhai, China.
State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, China.
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science. Department of Materials and Environmental Chemistry, Arrhenius Laboratory, Stockholm University, Stockholm, Sweden; State Key Laboratory of Materials‐Oriented and Chemical Engineering, Nanjing Tech University, Nanjing, China; Centre of Advanced Research in Bionanoconjugates and Biopolymers, Petru Poni Institute of Macromolecular Chemistry Aleea Grigore Ghica‐Voda, Iasi, Romania.ORCID iD: 0000-0001-9783-4535
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2020 (English)In: Journal of Computational Chemistry, ISSN 0192-8651, E-ISSN 1096-987X, Vol. 41, no 27, p. 2316-2335Article, review/survey (Refereed) Published
Abstract [en]

Computer simulations of model systems are widely used to explore striking phenomena in promising applications spanning from physics, chemistry, biology, to materials science and engineering. The long range electrostatic interactions between charged particles constitute a prominent factor in determining structures and states of model systems. How to efficiently calculate electrostatic interactions in simulation systems subjected to partial or full periodic boundary conditions has been a grand challenging task. In the past decades, a large variety of computational schemes has been proposed, among which the Ewald summation method is the most reliable route to accurately deal with electrostatic interactions between charged particles in simulation systems. In addition, extensive efforts have been done to improve computational efficiencies of the Ewald summation based methods. Representative examples are approaches based on cutoffs, reaction fields, multi‐poles, multi‐grids, and particle‐mesh schemes. We sketched an ENUF method, an abbreviation for the Ewald summation method based on the nonuniform fast Fourier transform technique, and have implemented this method in particle‐based simulation packages to calculate electrostatic energies and forces at micro‐ and mesoscopic levels. Extensive computational studies of conformational properties of polyelectrolytes, dendrimer‐membrane complexes, and ionic fluids demonstrated that the ENUF method and its derivatives conserve both energy and momentum to floating point accuracy, and exhibit a computational complexity of  with optimal physical parameters. These ENUF based methods are attractive alternatives in molecular simulations where high accuracy and efficiency of simulation methods are needed to accelerate calculations of electrostatic interactions at extended spatiotemporal scales.

Place, publisher, year, edition, pages
John Wiley & Sons, 2020. Vol. 41, no 27, p. 2316-2335
National Category
Energy Engineering
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Energy Engineering
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URN: urn:nbn:se:ltu:diva-80551DOI: 10.1002/jcc.26395ISI: 000560041200001PubMedID: 32808686Scopus ID: 2-s2.0-85089543346OAI: oai:DiVA.org:ltu-80551DiVA, id: diva2:1460750
Note

Validerad;2020;Nivå 2;2020-08-27 (alebob)

Available from: 2020-08-25 Created: 2020-08-25 Last updated: 2025-04-17Bibliographically approved

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Laaksonen, Aatto

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