Free-energy landscape of polymer-crystal polymorphism
Abstract
Polymorphism rationalizes how processing can control the final structure of a material. The rugged free-energy landscape and exceedingly slow kinetics in the solid state have so far hampered computational investigations. We report for the first time the free-energy landscape of a polymorphic crystalline polymer, syndiotactic polystyrene. Coarse-grained metadynamics simulations allow us to efficiently sample the landscape at large. The free-energy difference between the two main polymorphs, and , is further investigated by quantum-chemical calculations. The two methods are in line with experimental observations: they predict as the more stable polymorph at standard conditions. Critically, the free-energy landscape suggests how the polymorph may lead to experimentally observed kinetic traps. The combination of multiscale modeling, enhanced sampling, and quantum-chemical calculations offers an appealing strategy to uncover complex free-energy landscapes with polymorphic behavior.
Keywords
Cite
@article{arxiv.2007.11867,
title = {Free-energy landscape of polymer-crystal polymorphism},
author = {Chan Liu and Jan Gerit Brandenburg and Omar Valsson and Kurt Kremer and Tristan Bereau},
journal= {arXiv preprint arXiv:2007.11867},
year = {2020}
}
Comments
10 pages, 4 figures