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DOE OSTI · 3027515

Highly functional microspheres facilitating Diels–Alder network formation

Abstract

Introducing particles to dynamic covalent networks is a common approach to improve their performance. However, network formation can be impacted by their size and functionality. The influence can be predicted by common theories for small molecular precursors, but it is unclear whether they are applicable to precursors bearing numerous reactive groups and micrometer-scale dimensions. In this work, an experimental study was undertaken using dynamic covalent networks formed by the Diels–Alder reaction between furan and maleimide groups. The gelation behavior of the Diels–Alder networks was studied using rheometry to track their network formation at 40 °C with varying maleimide-functionalized microsphere loading. The highly functional microspheres can interact with the furan precursor, aiding in the formation of the Diels–Alder networks. A 5 wt% microsphere sample can reduce the gelation time by 23% and facilitate network formation in an unbalanced stoichiometry near the critical composition to form a percolating network.

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BibTeXRIS

Kim, Gaeun [New Mexico Tech, Socorro, NM (United States)], McCoy, John D. [New Mexico Tech, Socorro, NM (United States)], Chowdhury, Sanchari [New Mexico Tech, Socorro, NM (United States)], Lee, Youngmin [New Mexico Tech, Socorro, NM (United States)] (ORCID:0000000274028829). 2025-11-03. Highly functional microspheres facilitating Diels–Alder network formation. https://doi.org/10.1557/s43578-025-01729-x

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36 MATERIALS SCIENCE