Molecular dynamics simulations of the effect of starch on transport of water and ions through graphene nanopores.

J Mol Model

Polymer Electrolytes and Materials Group (PEMG), Department of Physics, Indian Institute of Technology Jodhpur, Karwar, Rajasthan, 342030, India.

Published: April 2024

AI Article Synopsis

  • Molecular dynamics simulations reveal that water and ions exhibit short-range order near starch-graphene membranes, indicating strong interactions with saltwater.
  • The optimal performance for ion sieving occurs at a starch loading of 15 wt.% and a pore diameter of 14 Å, achieving high water transport and ion rejection rates.
  • GROMACS and Visual Molecular Dynamics software were used to analyze pressure-induced transport and the interactions between water, ions, and the polymer membrane.

Article Abstract

Context: We use molecular dynamics simulations to unravel the molecular level mechanisms underlying the structure and dynamics of water and ions flowing through nanoporous starch-graphene membranes. Our findings indicate that there is a significant tendency for the formation of short-range order in close proximity to the graphene membrane surface. This leads to a greater concentration of water and ions, suggesting strong interactions between the membrane and the saltwater solution. Furthermore, we found that the starch-graphene membrane was most efficient in sieving out ions when the starch loading is 15 wt.%, and the pore diameter is 14 Å. At these conditions, the starch-graphene membrane showed a high water transport rate and maintained a high level of ion rejection.

Methods: We investigated the effect of loading of starch and the pore diameter on the pressure-induced transport, structure, and dynamics of Na, Cl, and water using the GROMACS 2021.4 package. We further analyze the density profiles of water and ions in the context of ion-polymer and water-polymer interactions and provide mechanistic insights into the piston-induced flow of saltwater through the starch-graphene membranes using Visual Molecular Dynamics (VMD) software.

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Source
http://dx.doi.org/10.1007/s00894-024-05921-4DOI Listing

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