Journal Article10.1002/MATS.200300047
Association Equilibria Theory for Polymers in Mixed Solvents with Specific Interactions
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TL;DR: Theoretical and experimental aspects of polymers, in mixed solvents with hydrogen-bonding-specific interactions, are investigated using a simple association model based on the theory of association equilibria developed by Pouchly et al. as discussed by the authors.
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Abstract: Hydrogen bonding plays an important role in determining the physical and thermodynamic properties of polar fluids. Theoretical and experimental aspects of polymers, in mixed solvents with hydrogen-bonding-specific interactions, are investigated using a simple association model based on the theory of association equilibria developed by Pouchly et al. The thermodynamic non-idealities are accounted for using a modified Flory-Huggins theory with effective g ij parameters. The entropic term of the above formalism has been formulated taking into account the pplymer segment-solvent as well as the solvent-solvent hydrogen-bond formation. Four equilibrium constants are introduced to make a realistic picture between the associated and non-associated species. By application of multiple association equilibria theory, sorption coefficients λ and Y have been deduced for the ternary systems with specific interactions i.e., alcohol(C 1 -C 3 )/heptan-3-one/poly(N-vinyl pyrrolidone). Numerical values for the self-association constants of the alcohols, association constants for the alcohols and ketone and for the alcohols and polymer, have been evaluated. These were determined as parameters adjusting best the predicted values of both preferential solvation, λ, and the second virial coefficient, A 2 , to experimental ones.
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Citations
Treatment of poly(styrene-co-methacrylic acid)/poly(4-vinylpyridine) blends in solution under liquid–liquid phase-separation conditions. A new method for phase-separation data attainment from viscosity measurements
TL;DR: In this paper, the phase diagram from the viscometric experiments of polymer mixtures was constructed for binodal or cloud-point isotherms, and the results indicated an augmentation in the dimensions of donor polymer B, in the presence of acceptor polymer C, intensifying with the concentration of C, which is interpreted as an B-C association growing as the number of hydrogen bonds increases.
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