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◆ Macromolecules2025-10-23· Crystallinity

Impact of Carbonyl Group Incorporation in Semicrystalline High-Density Polyethylene

Afiq Anuar, Arman Edalat, Lea Ringelhan, Qiang Yu, Maximilian Baur, Albrecht Petzold, Stefan Mecking, Thomas Thurn‐Albrecht, Kay Saalwächter

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Ketone-functionalization of polyethylene via copolymerization with carbon monoxide offers a promising route to introducing reactive carbonyl moieties while preserving the advantageous bulk properties of high-density polyethylene (HDPE). Here, we systematically investigate the influence of low-level (0.6–1.6 mol %) keto incorporation on the thermal properties, semicrystalline morphology, crystallization, and chain dynamics of HDPE. Differential scanning calorimetry and small-angle X-ray scattering reveal only minor reductions in melting temperature and lamellar thickness. Complementarily, 1 H NMR FID measurements reveal that KetoPE samples exhibit crystallinity-temperature profiles comparable to HDPE, indicating that the semicrystalline morphology is mainly preserved upon keto incorporation up to a few percent. Importantly, 13 C T 1 relaxation quantitatively confirms that intracrystalline chain diffusion coefficients are essentially unchanged. Notably, 1 H spin-diffusion NMR confirms that presumably the isolated carbonyl moieties predominantly reside in the interphase. Thus, low-level ketone incorporation imparts additional reactivity or adhesion potential without compromising HDPE’s mechanical or thermal integrity.
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Impact of Carbonyl Group Incorporation in Semicrystalline High-Density Polyethylene — 科研速览 Science Skim