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Microscopic Origins of Dynamic Mechanical Properties of Filled Rubber Investigated with X-ray Photon Correlation Spectroscopy

ORAL

Abstract

The mechanical properties of nanoparticle filled rubber are largely determined by the structure of the filler network and filler/polymer interactions. These reinforced rubbers have broad commercial utility, such as use in tire tread technology. The dynamic mechanical properties of these systems have a major impact on tire safety and fuel economy. Despite their importance, the connections between microscale filler behavior and macroscale performance are not well understood. Recent developments in X-ray photon correlation spectroscopy (XPCS) allow us to probe the microscale dynamics of filler particle networks and determine how this influences macroscale properties. We have used in-situ XPCS on styrene-butadiene rubber (SBR) filled with silicas of different surface chemistries under dynamic strain to probe the rearrangement of the filler network. We draw connections between the filler/polymer interaction and the resulting network structure, filler dynamics, and macroscopic properties.

Presenters

  • Dillon Presto

    Polymer Science, University of Akron

Authors

  • Dillon Presto

    Polymer Science, University of Akron

  • Suresh Narayanan

    Argonne National Laboratory, Argonne Natl Lab, Advanced Photon Source, Argonne National Laboratory, X-Ray Science Division, Argonne National Laboratory

  • Bryce Meyer

    Mathematics, University of Akron

  • John Meyerhofer

    Univ of Akron, Polymer Science, University of Akron

  • Sergio Moctezuma

    Dynasol Elastómeros

  • Mark Sutton

    McGill Univ, Physics, McGill University, Department of Physics, McGill University

  • Mark Foster

    Dept. of Polymer Science, University of Akron, Univ of Akron, Polymer Science, University of Akron