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DOE OSTI · 1807731

Harnessing autocatalytic reactions in polymerization and depolymerization

Abstract

Abstract Autocatalysis and its relevance to various polymeric systems are discussed by taking inspiration from biology. A number of research directions related to synthesis, characterization, and multi-scale modeling are discussed in order to harness autocatalytic reactions in a useful manner for different applications ranging from chemical upcycling of polymers (depolymerization and reconstruction after depolymerization), self-generating micelles and vesicles, and polymer membranes. Overall, a concerted effort involving in situ experiments, multi-scale modeling, and machine learning algorithms is proposed to understand the mechanisms of physical and chemical autocatalysis. It is argued that a control of the autocatalytic behavior in polymeric systems can revolutionize areas such as kinetic control of the self-assembly of polymeric materials, synthesis of self-healing and self-immolative polymers, as next generation of materials for a sustainable circular economy. Graphic Abstract

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BibTeXRIS

Kumar, Rajeev (ORCID:0000000194943488), Liu, Zening, Lokitz, Brad, Chen, Jihua, Carrillo, Jan-Michael, Jakowski, Jacek, Collier, C. Patrick (ORCID:000000028198793X), Retterer, Scott, Advincula, Rigoberto. 2021-07-12. Harnessing autocatalytic reactions in polymerization and depolymerization. https://doi.org/10.1557/s43579-021-00061-9

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36 MATERIALS SCIENCE↗