Enhanced Thermal Stability of Polymers under Extreme Nanoconfinement

ORAL

Abstract

It has been shown that the properties of polymers in weakly-interacting polymer nanocomposites (PNCs), such as Polystyrene(PS) and SiO2 nanoparticles (NP), can deviate from bulk due to segmental and chain confinement. Capillary Rise Infiltration (CaRI) of polymers into densely-packed NP films can produce PNCs with ultra-high NP loadings. Depending on the degree of confinement, the glass transition temperatures (Tg) of PS/SiO2 CaRI films can increase up to ~57 K. In this study, unentangled PS/SiO2 CaRI films were used to study the thermal degradation of polymers under extreme nanoconfinement. The degree of confinement was controlled by using NPs with different diameters, thus adjusting the effective pore diameter by 3~30 nm. We show that the thermal stability of PS is significantly increased in smaller pores under both thermo-oxidative and pyrolytic conditions. The characteristic degradation time during isothermal degradation at high temperatures is proportional to the viscosity of PS at lower temperatures, indicating an entropic origin of the improved stability. The details of the kinetics of the degradation process through surface or bulk is also explored.

*We acknowledge University of Pennsylvania MRSEC grant (NSF DMR-1720530) for the funding of this study.

Presenters

  • Haonan Wang

    • Chemistry, University of Pennsylvania, , Philadelphia, PA 19104
    • University of Pennsylvania

Authors

  • Haonan Wang

    • Chemistry, University of Pennsylvania, , Philadelphia, PA 19104
    • University of Pennsylvania
  • Jyo Lyn Hor

    • Dow Chemicals
    • University of Pennsylvania
  • Aixi Zhang

    • University of Pennsylvania
  • Prantik Mazumder

    • Corning Research and Development Corporation
  • Daeyeon Lee

    • Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, PA 19104
    • University of Pennsylvania
    • Chemical and Biomolecular Engineering, University of Philadelphia
  • Zahra Fakhraai

    • Chemistry, University of Pennsylvania, , Philadelphia, PA 19104
    • University of Pennsylvania
    • Chemistry, University of Pennsylvania