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Depleted depletion drives polymer swelling in poor solvent mixtures

Debashish Mukherji (), Carlos M. Marques, Torsten Stuehn and Kurt Kremer ()
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Debashish Mukherji: Max-Planck Institut für Polymerforschung
Carlos M. Marques: Institut Charles Sadron, Université de Strasbourg, CNRS
Torsten Stuehn: Max-Planck Institut für Polymerforschung
Kurt Kremer: Max-Planck Institut für Polymerforschung

Nature Communications, 2017, vol. 8, issue 1, 1-7

Abstract: Abstract Establishing a link between macromolecular conformation and microscopic interaction is a key to understand properties of polymer solutions and for designing technologically relevant “smart” polymers. Here, polymer solvation in solvent mixtures strike as paradoxical phenomena. For example, when adding polymers to a solvent, such that all particle interactions are repulsive, polymer chains can collapse due to increased monomer–solvent repulsion. This depletion induced monomer–monomer attraction is well known from colloidal stability. A typical example is poly(methyl methacrylate) (PMMA) in water or small alcohols. While polymer collapse in a single poor solvent is well understood, the observed polymer swelling in mixtures of two repulsive solvents is surprising. By combining simulations and theoretical concepts known from polymer physics and colloidal science, we unveil the microscopic, generic origin of this collapse–swelling–collapse behavior. We show that this phenomenon naturally emerges at constant pressure when an appropriate balance of entropically driven depletion interactions is achieved.

Date: 2017
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DOI: 10.1038/s41467-017-01520-5

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