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      A Surface Site Interaction Point Method for Dissipative Particle Dynamics Parametrization: Application to Alkyl Ethoxylate Surfactant Self-Assembly

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          Abstract

          Dissipative particle dynamics (DPD) is a coarse-grained approach to the simulation of large supramolecular systems, but one limitation has been that the parameters required to describe the noncovalent interactions between beads are not readily accessible. A first-principles computational method has been developed so that bead interaction parameters can be calculated directly from ab initio gas-phase molecular electrostatic potential surfaces of the molecular fragments that represent the beads. A footprinting algorithm converts the molecular electrostatic potential surfaces into a discrete set of surface site interaction points (SSIPs), and these SSIPs are used in the SSIMPLE (surface site interaction model for the properties of liquids at equilibrium) algorithm to calculate the free energies of transfer of one bead into a solution of any other bead. The bead transfer free energies are then converted into the required DPD interaction parameters for all pairwise combinations of different beads. The reliability of the parameters was demonstrated using DPD simulations of a range of alkyl ethoxylate surfactants. The simulations reproduce the experimentally determined values of the critical micelle concentration and mean aggregation number well for all 22 surfactants studied.

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          Theory of self-assembly of hydrocarbon amphiphiles into micelles and bilayers

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            Statistical Mechanics of Dissipative Particle Dynamics

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              Quantifying Intermolecular Interactions: Guidelines for the Molecular Recognition Toolbox

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                Author and article information

                Journal
                J Phys Chem B
                J Phys Chem B
                jp
                jpcbfk
                The Journal of Physical Chemistry. B
                American Chemical Society
                1520-6106
                1520-5207
                08 June 2020
                18 June 2020
                : 124
                : 24
                : 5047-5055
                Affiliations
                []Department of Chemistry, University of Cambridge , Lensfield Road, Cambridge CB2 1EW, U.K.
                []Unilever R&D Port Sunlight , Quarry Road East, Bebington CH63 3JW, U.K.
                [§ ]The Hartree Centre, STFC Daresbury Laboratory , Warrington WA4 4AD, U.K.
                Author notes
                Article
                10.1021/acs.jpcb.0c01895
                7309324
                32510951
                950df0bd-1dca-4d33-bd7f-9b1b051e0207
                Copyright © 2020 American Chemical Society

                This is an open access article published under a Creative Commons Attribution (CC-BY) License, which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.

                History
                : 03 March 2020
                : 24 May 2020
                Categories
                Article
                Custom metadata
                jp0c01895
                jp0c01895

                Physical chemistry
                Physical chemistry

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