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Satyen Dhamankar

Publications and source records attributed to Satyen Dhamankar.

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Role of interaction anisotropy in polymer cononsolvency: insights from the Flory-Huggins-Potts framework

Cononsolvency occurs when mixing two good solvents creates poor-solvent conditions for polymers over specific composition ranges, causing macroscopic phase separation or microscopic chain collapse. Despite its technological and biophysical relevance, the connection between macroscopic and microscopic manifestations of cononsolvency remains unclear. A key challenge is identifying which interactions govern cononsolvency: coarse-grained analyses like standard Flory--Huggins models assume purely isotropic interactions, while atomistic simulations contain complex anisotropic interactions that cannot be precisely controlled or isolated. Here, we address the role of interaction anisotropy using the Flory-Huggins-Potts framework, which yields $χ$ as a thermodynamic average over both configurational and internal-state coarse-grained degrees of freedom. This enables controlled comparison between systems with isotropic versus orientation-dependent interactions that share identical effective $χ$ parameters, either driving cononsolvency by strong solvent-cosolvent affinity or preferential polymer-cosolvent affinity. While pairs of systems exhibit equivalent macroscopic phase behavior, lattice Monte Carlo simulations reveal that those featuring orientation-dependent interactions generate distinct collapse signatures, particularly in reentrant coil-globule transitions or characteristics of the solvation structure. These results demonstrate how microscopic interactions influences cononsolvency behavior beyond what effective $χ$ parameters alone predict.

cond-mat.soft

Asymmetry in Polymer-Solvent Interactions Yields Complex Thermoresponsive Behavior

Thermoresponsive polymers hold both fundamental and technological importance, but the essential physics driving their intriguing behavior is not wholly understood. We introduce a lattice framework that incorporates elements of Flory-Huggins solution theory and the $q$-state Potts model to study the phase behavior of polymer solutions and single-chain conformational characteristics. Importantly, the framework does not employ any temperature- or composition-dependent parameters. With this minimal Flory-Huggins-Potts framework, we show that orientation-dependent interactions, specifically between monomer segments and solvent particles, are alone sufficient to observe upper critical solution temperatures, miscibility loops, and hourglass-shaped spinodal curves. Signatures of emergent phase behavior are found in single-chain Monte Carlo simulations, which display heating- and cooling-induced coil-globule transitions linked to energy fluctuations. The model also capably describes a range of experimental systems. This work provides new insights regarding the microscopic physics that underpin complex thermoresponsive behavior in polymers.

cond-mat.soft