A statistical theory of coil-to-globule-to-coil transition of a polymer chain in the mixture of good solvents
Yu.A. Budkov, A.L. Kolesnikov, N.N. Kalikin, M.G. Kiselev

TL;DR
This paper develops a statistical model to describe the coil-globule-coil transition of a polymer in mixed solvents, revealing temperature-dependent regimes and confirming the enthalpy-entropy nature of co-nonsolvency.
Contribution
It introduces a comprehensive off-lattice model accounting for various interactions and thermodynamics, providing new insights into the reentrant transition phenomena of polymers in mixed solvents.
Findings
Reentrant coil-globule-coil transition at high temperatures.
First-order phase transition at lower temperatures.
Solution heat capacity changes align with calorimetry data.
Abstract
We present an off-lattice statistical model of a single polymer chain in mixed solvent media. Taking into account a polymer conformational entropy, renormalization of solvent composition near the polymer backbone, the universal intermolecular excluded volume and Van-der-Waals interactions within the self-consistent field theory the reentrant coil-to-globule-to-coil transition (co-nonsolvency) has been described in this paper. For convenience we split the system volume in two parts: the volume occupied by the polymer chain and the volume of bulk solution. Considering the equilibrium between two sub-volumes, the polymer solvation free energy as a function of radius of gyration and co-solvent mole fraction within internal polymer volume has been obtained. Minimizing the free energy of solvation with respect to its arguments, we show two qulitatively different regimes of co-nonsolvency.…
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Taxonomy
TopicsMaterial Dynamics and Properties · Protein Structure and Dynamics · Electrostatics and Colloid Interactions
