0000000000985669

AUTHOR

Brian C. Benicewicz

0000-0003-4130-1232

showing 2 related works from this author

Dielectric breakdown strength of epoxy bimodal-polymer-brush-grafted core functionalized silica nanocomposites

2014

The central goal of dielectric nanocomposite design is to create a large interfacial area between the matrix polymer and nanofillers and to use it to tailor the properties of the composite. The interface can create sites for trapping electrons leading to increased dielectric breakdown strength (DBS). Nanoparticles with a bimodal population of covalently anchored molecules were created using ligand engineering. Electrically active short molecules (oligothiophene or ferrocene) and matrix compatible long poly(glycidyl methacrylate) (PGMA) chains comprise the bimodal brush. The dielectric breakdown strength was evaluated from recessed samples and dielectric spectroscopy was used to study the di…

PermittivityGlycidyl methacrylateeducation.field_of_studyMaterials scienceNanocompositePopulationta221nonhomogeneous mediananotekniikkaDielectricPolymer brushDielectric spectroscopychemistry.chemical_compoundchemistryepoxy resinsdielectric materialsdielectric nanocomposite designDielectric lossnanoteknologiaElectrical and Electronic EngineeringComposite materialeducationIEEE Transactions on dieletrics and electrical insulation
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Tuning Selectivities in Gas Separation Membranes Based on Polymer-Grafted Nanoparticles

2020

Polymer membranes are critical to many sustainability applications that require the size-based separation of gas mixtures. Despite their ubiquity, there is a continuing need to selectively affect the transport of different mixture components while enhancing mechanical strength and hindering aging. Polymer-grafted nanoparticles (GNPs) have recently been explored in the context of gas separations. Membranes made from pure GNPs have higher gas permeability and lower selectivity relative to the neat polymer because they have increased mean free volume. Going beyond this ability to manipulate the mean free volume by grafting chains to a nanoparticle, the conceptual advance of the present work is…

Materials scienceheterogeneous transport mediaimproved selective transportSynthetic membraneGeneral Physics and AstronomyNanoparticlegas separation membraneContext (language use)02 engineering and technology010402 general chemistry01 natural sciencesGeneral Materials ScienceGas separationfree volume distributionchemistry.chemical_classificationpolymer-grafted nanoparticlesGeneral EngineeringPolymer021001 nanoscience & nanotechnology0104 chemical sciencesMembranechemistryChemical engineeringVolume (thermodynamics)mixed matrix membrane0210 nano-technologySelectivity
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