Lattice cluster theory for polymer melts with specific interactions
Wen-Sheng Xu, Karl F. Freed

TL;DR
This paper extends the lattice cluster theory to incorporate specific interactions in polymer melts, allowing for more realistic modeling of thermodynamic properties influenced by chemical structure and interaction strengths.
Contribution
The authors develop an extended LCT model with multiple interaction parameters, enabling detailed analysis of specific interactions in polymer melts.
Findings
Analytical expression for Helmholtz free energy derived.
Thermodynamic properties can be tuned by specific interaction parameters.
Model applicable to poly(n-α-olefin) structures with side chain interactions.
Abstract
Despite the long-recognized fact that chemical structure and specific interactions greatly influence the thermodynamic properties of polymer systems, a predictive molecular theory that enables systematically addressing the role of chemical structure and specific interactions has been slow to develop even for polymer melts. While the lattice cluster theory (LCT) provides a powerful vehicle for understanding the influence of various molecular factors, such as monomer structure, on the thermodynamic properties of polymer melts and blends, the application of the LCT has heretofore been limited to the use of the simplest polymer model in which all united atom groups within the monomers of a species interact with a common monomer averaged van der Waals energy. Thus, the description of a compressible polymer melt involves a single van der Waals energy. As a first step towards developing more…
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