Swelling, Structure, and Phase Stability of Compressible Microgels
arXiv:1610.05295 · doi:10.1039/c6sm02056a
Abstract
Microgels are soft colloidal particles that, when dispersed in a solvent, swell and deswell in response to changes in environmental conditions, such as temperature, concentration, and H. Using Monte Carlo simulation, we model bulk suspensions of microgels that interact via Hertzian elastic interparticle forces and can expand or contract via trial moves that allow particles to change size in accordance with the Flory-Rehner free energy of cross-linked polymer gels. We monitor the influence of particle compressibility, size fluctuations, and concentration on bulk structural and thermal properties by computing particle swelling ratios, radial distribution functions, static structure factors, osmotic pressures, and freezing densities. For microgels in the nanoscale size range, particle compressibility and associated size fluctuations suppress crystallization, shifting the freezing transition to a higher density than for the hard-sphere fluid. As densities increase beyond close packing, microgels progressively deswell, while their intrinsic size distribution grows increasingly polydisperse.
10 pages, 8 figures
References in corpus (5)
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Cited by in corpus (6)
- Counterion-Induced Swelling of Ionic Microgels
- Volume fraction determination of microgel composed of interpenetrating polymer networks of PNIPAM and polyacrylic acid
- Ionic Size Effects on the Poisson-Boltzmann Theory
- Modeling deswelling, thermodynamics, structure, and dynamics in ionic microgel suspensions
- Dynamical properties of different models of elastic polymer rings: confirming the link between deformation and fragility
- Structure of the simple harmonic-repulsive system in liquid and glassy states studied by the triple correlation function