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DOE OSTI · 2920038

Mechanically Accelerated Depolymerization of Entangled Linear Polymer Melts

Abstract

Mechanical forces can enhance the chemical depolymerization of synthetic polymers when shear flow accelerates chain scission. To quantify the extent of mechanically-accelerated scission, the effect of simple shear flow (duration and strength) with low Weissenberg and Deborah numbers was investigated by considering the impact of applied work in both simple shear and shear dominated mixed flows. Hydrogenated polyisoprene was chosen as a model linear, entangled system. The conditions (strain amplitude, frequency, and shearing time) necessary to increase chain scission were assessed in the rubbery melt. Shear flow accelerated chain scission at higher temperatures, suggesting an activated process. Isothermal scission versus work curves were superposed by applying shift factors a T,S , whose Arrhenius-like temperature dependence gave an apparent activation energy for chain scission of ~ 110 kJ/mol, which is likely a combination of the activation energy of viscosity and bond energy. This work provides a base for quantifying the impact of shear on depolymerization of polymer melts and highlight the connection between viscous dissipation and scission chemistry.

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BibTeXRIS

Ahn, Junghyun [Univ. of Minnesota, Minneapolis, MN (United States)], Bingaman, Jon [Univ. of California, Santa Barbara, CA (United States)] (ORCID:0000000232418618), Segalman, Rachel A. [Univ. of California, Santa Barbara, CA (United States)] (ORCID:0000000242925103), Scott, Susannah L. [Univ. of California, Santa Barbara, CA (United States)] (ORCID:0000000311610499), Walker, Lynn M. [Univ. of Minnesota, Minneapolis, MN (United States)] (ORCID:0000000274789759). 2025-11-05. Mechanically Accelerated Depolymerization of Entangled Linear Polymer Melts. https://doi.org/10.1021/acs.macromol.5c00974

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