Search results for "NODAL"

showing 10 items of 264 documents

Dynamics of phase separation and critical phenomena in polymer mixtures

1987

The phenomenological mean-field theory for statics and dynamics of polymer mixtures is described, generalizing the approaches of Flory-Huggins, Cahn-Hilliard and de Gennes. Predictions are made for critical behavior, spinodal decomposition and homogeneous nucleation. The validity of the mean-field approximations is discussed with Ginzburg criteria. The results of the theory are compared to computer simulations and recent experiments.

chemistry.chemical_classificationMaterials sciencePolymers and PlasticsSpinodal decompositionCritical phenomenaNucleationThermodynamicsPolymerCondensed Matter::Soft Condensed MatterColloid and Surface ChemistrychemistryCritical point (thermodynamics)HomogeneousMaterials ChemistryStatistical physicsPhysical and Theoretical ChemistryStaticsColloid and Polymer Science
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Simulating Copolymeric Nanoparticle Assembly in the Co-solvent Method: How Mixing Rates Control Final Particle Sizes and Morphologies

2018

Abstract The self-assembly of copolymeric vesicles and micelles in micromixers is studied by External Potential Dynamics (EPD) simulations – a dynamic density functional approach that explicitly accounts for the polymer architecture both at the level of thermodynamics and dynamics. Specifically, we focus on the co-solvent method, where nanoparticle precipitation is triggered by mixing a poor co-solvent into a homogeneous copolymer solution in a micromixer. Experimentally, it has been reported that the flow rate in the micromixers influences the size of the resulting particles as well as their morphology: At small flow rates, vesicles dominate; with increasing flow rate, more and more micell…

chemistry.chemical_classificationMaterials sciencePolymers and PlasticsSpinodal decompositionOrganic ChemistryMicromixerNanoparticleFOS: Physical sciencesPolymer architectureNanotechnology02 engineering and technologyPolymerCondensed Matter - Soft Condensed Matter010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesVolumetric flow ratechemistryChemical physicsMaterials ChemistryParticleSoft Condensed Matter (cond-mat.soft)0210 nano-technologyMixing (physics)
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Confinement-induced screening of hydrodynamic interactions and spinodal decomposition: Multiscale simulations of colloid-polymer mixtures

2012

Phase separation kinetics of a colloid-polymer mixture confined between two planar repulsive walls is studied by a multiscale simulation approach. Colloids and polymers are described by particles interacting with continuous potentials suitable for molecular-dynamics simulation, while hydrodynamic interactions mediated by solvent particles are accounted for by the multiparticle collision dynamics method. Varying the distance D between the walls and the character of the boundary conditions, the interplay of structure formation parallel and perpendicular to the walls is studied, and the effect of hydrodynamics on the growth of domain size ld(t) with time t is elucidated. Only for slip boundary…

chemistry.chemical_classificationMaterials scienceStructure formationSpinodal decompositionKineticsGeneral Physics and AstronomySlip (materials science)PolymerCondensed Matter::Soft Condensed MatterColloidClassical mechanicschemistryChemical physicsPhase (matter)Boundary value problemEPL (Europhysics Letters)
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Mesoscopic gel at low agarose concentration in water: a dynamic light scattering study

1995

Previous work in our laboratory has shown that at very low agarose concentration in water gelation still occurs within mutually disconnected, high concentration regions generated by spinodal demixing. The freely diffusing particles obtained in these conditions are studied in the present work by depolarized dynamic light scattering and probe diffusion experiments. These particles are found to behave as large (in fact, mesoscopic) polymer fibers entangled in a continuously rearranged mesh with scaling parameters typical of partially flexible, neutral chains. The present results allow specifying the notion of mesoscopic gelation. They also reveal that the same symmetry-breaking mechanism that …

chemistry.chemical_classificationMesoscopic physicsWork (thermodynamics)SpinodalLightMacromolecular SubstancesSepharoseDiffusionAnalytical chemistryBiophysicsPolymerBiophysical PhenomenaCondensed Matter::Soft Condensed Matterchemistry.chemical_compoundDynamic light scatteringchemistryChemical physicsPercolationScattering RadiationAgaroseGelsResearch ArticleBiophysical Journal
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Shear induced mixing/demixing: blends of homopolymers, of homopolymers plus copolymers, and blends in solution

2000

Shear may shift the phase boundary towards the homogeneous state (shear induced mixing, SIM), or in the opposite direction (shear induced demixing, SID). SIM is the typical behavior of mixtures of components of low molar mass and polymer solutions, SID can be observed with solutions of high molar mass polymers and polymer blends at higher shear rates. The typical sequence with increasing shear rate is SIM, then occurrence of an isolated additional immiscible area (SLD), melting of this island into the main miscibility gap, and finally SIM again. A three phase line originates and ends in two critical end points. Raising pressure increases the shear effects. For copolymer containing systems S…

chemistry.chemical_classificationPhase boundaryMolar massMaterials sciencePolymers and PlasticsSpinodal decompositionOrganic ChemistryThermodynamicsPolymerCondensed Matter PhysicsShear ratechemistryShear (geology)Materials ChemistryCopolymerOrganic chemistryPolymer blendMacromolecular Symposia
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Spinodal decomposition of chemically fueled polymer solutions

2021

Out-of-equilibrium phase transitions driven by dissipation of chemical energy are a common mechanism for morphological organization and temporal programming in biology. Inspired by this, dissipative self-assembly utilizes chemical reaction networks (CRNs) that consume high-energy molecules (chemical fuels) to generate transient structures and functionality. While a wide range of chemical fuels and building blocks are now available for chemically fueled systems, so far little attention has been paid to the phase-separation process itself. Herein, we investigate the chemically fueled spinodal decomposition of poly(norbornene dicarboxylic acid) (PNDAc) solution, which is driven by a cyclic che…

chemistry.chemical_classificationPhase transitionMaterials scienceSpinodal decomposition02 engineering and technologyGeneral ChemistryPolymerDissipation010402 general chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesChemical reaction0104 chemical sciencesChemical energychemistryChemical engineeringDissipative systemMolecule0210 nano-technologySoft Matter
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1995

Surfaces have a profound effect on the structure and related properties of multiphase polymeric materials, such as polymer mixtures and block copolymer mesophases. In particular, phase transitions in the bulk (unmixing, microphase separation, etc.) may be complemented by surface-induced transitions (formation of wetting layers, surface-directed spinodal decomposition, surface-induced ordering). This review gives a brief introduction to the phenomenological theories of such phenomena, emphasizing the simplest approach based on Flory—Huggins—de Gennes free energy functionals and associated Monte Carlo simulations. More sophisticated theories and recent experiments are mentioned briefly.

chemistry.chemical_classificationPhase transitionPolymers and PlasticsSpinodal decompositionGeneral Chemical EngineeringMonte Carlo methodMineralogyThermodynamicsPolymerCondensed Matter::Soft Condensed MatterchemistryMean field theoryPhenomenological modelWettingPolymer blendActa Polymerica
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Effects of solvent perturbation on gelation driven by spinodal demixing

1999

We study effects of solvent perturbation on kinetic competition between spinodal demixing and gelation in agarose solutions at a concentration of 5 g/l. Two different cosolutes (tert-butyl alcohol and trimethyl amine N-oxide) known for altering in opposite way solvent-mediated interactions are chosen. By rheometry, static and dynamic light scattering experiments, we show that the cosolute presence shifts the boundary of the instability region of solution leaving unaffected temperature and polymer concentration values required for percolation. Results suggest that an appropriate choice of quenching temperature and solvent allows controlling the gelation time and the gel structural properties.

chemistry.chemical_classificationPhase transitionSpinodalRheometryOrganic ChemistryBiophysicsAnalytical chemistryThermodynamicsPolymerBiochemistrySolventchemistry.chemical_compoundDynamic light scatteringchemistryPolymer physicsAgaroseBiophysical Chemistry
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Artifacts in Light Scattering Experiments Using Opaque Scattering Screens on the Example of Spinodal Decomposition

1996

chemistry.chemical_classificationPolymers and PlasticsOpacityScatteringbusiness.industryChemistrySpinodal decompositionOrganic ChemistryPolymerLight scatteringInorganic ChemistryMolten stateInvestigation methodsOpticsError analysisChemical physicsMaterials ChemistrybusinessMacromolecules
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Hydrodynamic mechanisms of spinodal decomposition in confined colloid-polymer mixtures: A multiparticle collision dynamics study

2013

A multiscale model for a colloid-polymer mixture is developed. The colloids are described as point particles interacting with each other and with the polymers with strongly repulsive potentials, while polymers interact with each other with a softer potential. The fluid in the suspension is taken into account by the multiparticle collision dynamics method (MPC). Considering a slit geometry where the suspension is confined between parallel repulsive walls, different possibilities for the hydrodynamic boundary conditions (b.c.) at the walls (slip versus stick) are treated. Quenching experiments are considered, where the system volume is suddenly reduced (keeping the density of the solvent flui…

chemistry.chemical_classificationQuenchingPolymersSpinodal decompositiondigestive oral and skin physiologyTime evolutionGeneral Physics and AstronomySlip (materials science)PolymerMolecular Dynamics Simulationbody regionsCondensed Matter::Soft Condensed MatterColloidClassical mechanicschemistryChemical physicsddc:540HydrodynamicsColloidsBoundary value problemPhysical and Theoretical ChemistrySolubilityThe Journal of Chemical Physics
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