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Published June 13, 2023 | public
Journal Article

Investigation of the structure, filler interaction and degradation of disulfide elastomers made by Reversible Radical Recombination Polymerization (R3P)

Abstract

In this paper we report the synthesis and analysis of cyclic polydisulfides, their redox depolymerization as well as their interaction with carbon black. Cyclic poly(3,6-dioxa-1,8-octanedithiol)s (pDODT) were synthesized by Reversible Radical Recombination Polymerization (R3P). R3P is a scalable "green" polymerization process using triethylamine (TEA), H₂O₂ and air for the polymerization of dithiol monomers. pDODTs were synthesized in 5 and 20 g batches. The effect of peroxide concentration (3, 5, 10, 20, 30 %) was investigated. It was found that the molecular weights increased exponentially with increasing peroxide concentrations. At 30 % peroxide concentration pDODTs with Mₙ up to 400,000 g/mol and polydispersity of 2 were obtained. 700 and 800 MHz NMR were used for investigating the chemical structure of the polymers. The absence of thiol end group signals in polymers made with > 10 wt % H₂O₂ and Mₙ < 100,000 g/mol, including a sample of a fractionated polymer with starting Mₙ = 600,000 g/mol, verified cyclic structures. Dithiothreitol reduced the polymers to monomer and a small percentage of oligomers. Carbon black was shown to increase the moduli of high molecular weight pDODTs. Swelling tests in chloroform showed that polymers made with 20 and 30 w% peroxide swelled 14 and 10 times of their starting weight without dissolving, indicating chemical interaction between the polymers and carbon black. Further analysis of these interesting elastomers, available at the 20 g scale, is in progress.

Additional Information

© 2023 Elsevier. This work was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, United States under Award #DE‐SC0018891 and a start-up fund of The Ohio State University, United States #11232011000-11-PUSKAS. The work at TTU and Caltech was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, United States under Awards DE-SC0018657 and DE-SC0018655. The authors also gratefully acknowledge funding from USDA-NIFA to Hatch project number OHO01417. GBM also acknowledges support from the Department of Chemical and Biomolecular Engineering at NC State University, United States. The authors thank Maggie Gottfried for her assistance in the synthesis of pDODTs, and Dr. Miroslawa El Fray (West Pomeranian University of Technology, Szeczin, Poland) for the use of the DSC instrument. CRediT authorship contribution statement. Kristof Molnar: Methodology, Validation, Investigation, Formal analysis, Writing – original draft, Writing – review & editing, Visualization. Aswathy Sasidharan Pillai: Methodology, Validation, Investigation, Formal analysis, Writing – original draft, Visualization. Dongjie Chen: Formal analysis, Writing – original draft. Gabor Kaszas: Investigation, Formal analysis, Writing – original draft, Visualization. Gregory B. McKenna: Writing – original draft, Writing – review & editing, Supervision, Funding acquisition. Julia A. Kornfield: Writing – original draft, Writing – review & editing, Supervision, Funding acquisition. Judit E. Puskas: Conceptualization, Methodology, Writing – original draft, Writing – review & editing, Supervision, Funding acquisition. Data availability. Data will be made available on request. The authors declare the following financial interests/personal relationships which may be considered as potential competing interests: Judit E. Puskas reports financial support was provided by US Department of Energy. Gregory B. McKenna reports financial support was provided by US Department of Energy. Julia A. Kornfield reports financial support was provided by US Department of Energy. Kristof Molnar reports financial support was provided by US Department of Energy. Dongjie Chen reports financial support was provided by US Department of Energy.

Additional details

Created:
August 22, 2023
Modified:
October 20, 2023