Abstract
We report that differences in ring strain enthalpy between cis and trans isomers of sila-cycloheptene provide a driving force for both polymerization and depolymerization via olefin metathesis. A need for new methods to reintroduce the low-strain isomer into the plastic economy inspired the development of a polymerization based on ring-opening/cross-metathesis step polymerization, which afforded perfect sequence control for an alternating copolymer. The chemical principles are a platform for achieving both efficient polymerization and depolymerization with high mass recovery in functional polymers.
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CITATION STYLE
Wakefield IV, H., Fromel, N. J., Jiang, J., Kevlishvili, I., Yao, Y., Craig, S. L., … Klausen, R. S. (2024). Isomer-driven polymerization, depolymerization, and reconstruction. Polymer Chemistry, 15(48), 5016–5022. https://doi.org/10.1039/d4py01281j
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