6533b857fe1ef96bd12b50c8
RESEARCH PRODUCT
Molecular modeling studies of interactions between sodium polyacrylate polymer and calcite surface
Juha LinnantoJuha LinnantoA. OravilahtiA. YlikantolaMartti ToivakkaJuha Knuutinensubject
chemistry.chemical_classificationQuantitative Biology::BiomoleculesMaterials scienceSodium polyacrylateSodiumInorganic chemistryAb initioGeneral Physics and Astronomychemistry.chemical_elementSurfaces and InterfacesGeneral ChemistryPolymerCondensed Matter PhysicsBranching (polymer chemistry)DispersantSurfaces Coatings and FilmsMolecular dynamicschemistry.chemical_compoundchemistryChemical engineeringPhysics::Atomic and Molecular ClustersMoleculePhysics::Chemical Physicsta116description
Abstract The interactions between calcite pigment and sodium polyacrylate dispersing agent, widely used in papermaking as paper coating components, were investigated using classical force field and quantum chemical approaches. The objective was to understand interactions between the calcite surface and sodium polyacrylate polymer at 300 K using molecular dynamics simulations. A quantum mechanical ab initio Hartree–Fock method was also used to obtain detailed information about the sodium polyacrylate polymer structure. The effect of water molecules (moisture) on the interactions was also examined. Calculations showed that molecular weight, branching and the orientation of sodium polyacrylate polymers influence the interactions between the calcite surface and the polymer. The force field applied, and also water molecules, were found to have an impact on all systems studied. Ab initio Hartree–Fock calculations indicated that there are two types of coordination between sodium atoms and carboxylate groups of the sodium polyacrylate polymer, inter- and intra-carboxylate group coordination. In addition, ab initio Hartree–Fock calculations of the structure of the sodium polyacrylate polymer produced important information regarding interactions between the polymers and carboxylated styrene-butadiene latex particles.
year | journal | country | edition | language |
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2013-07-01 | Applied Surface Science |