化学
共价键
共聚物
二硫键
高分子化学
动态共价化学
聚乙烯
有机化学
分子
聚合物
生物化学
超分子化学
作者
Logan M. Fenimore,Mathew J. Suazo,Sarah Mitchell,Hadi Mohammadi,Kimberly Miller McLoughlin,Cassandra Gallaschun,Patryk Sewruk,Markus Busch,John M. Torkelson
摘要
Cross-linked polyethylene (XLPE) is a commercially important polyolefin thermoset that suffers from nonrecyclability due to its permanent cross-links. Herein, we report the first in-reactor synthesis of dynamic covalently cross-linked polyethylene or polyethylene covalent adaptable networks (PE CANs) via free-radical copolymerization of ethylene and bis(2,2,6,6-tetramethyl-4-piperidyl methacrylate) disulfide (BTMA). BTMA is a bifunctional comonomer containing a dissociative dynamic disulfide bond. These PE CANs exhibit high crystallinity, outstanding dimensional stability, high-temperature creep resistance, and robust thermomechanical properties comparable to commercial XLPE. Crucially, our PE CANs demonstrate full recovery of cross-link density and thermomechanical performance after recycling. Stress relaxation studies reveal viscoelastic behavior enabled by cross-link exchange but dominated by polymer chain reptation, resulting in activation energies aligned with those of long-chain-branched PE melts. This work presents a novel, scalable method for free-radical copolymerization of recyclable PE CANs, offering a more sustainable alternative to XLPE.
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