Physical Review X (May 2022)

Cooperative Intramolecular Dynamics Control the Chain-Length-Dependent Glass Transition in Polymers

  • Daniel L. Baker,
  • Matthew Reynolds,
  • Robin Masurel,
  • Peter D. Olmsted,
  • Johan Mattsson

DOI
https://doi.org/10.1103/PhysRevX.12.021047
Journal volume & issue
Vol. 12, no. 2
p. 021047

Abstract

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The glass transition is a long-standing unsolved problem in materials science. For polymers, our understanding of glass formation is particularly poor because of the added complexity of chain connectivity and flexibility; structural relaxation of polymers thus involves a complex interplay between intramolecular and intermolecular cooperativity. Here, we study how the glass-transition temperature T_{g} varies with molecular weight M for different polymer chemistries and chain flexibilities. We find that T_{g}(M) is controlled by the average mass (or volume) per conformational degree of freedom and that a “local” molecular relaxation (involving a few conformers) controls the larger-scale cooperative α relaxation responsible for T_{g}. We propose that dynamic facilitation where a local relaxation facilitates adjacent relaxations, leading to hierarchical dynamics, can explain our observations, including logarithmic T_{g}(M) dependences. Our study provides a new understanding of molecular relaxations and the glass transition in polymers, which paves the way for predictive design of polymers based on monomer-scale metrics.