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March 1, 2026Macromolecules0 citations

Precision-Engineered Silane Distribution in Polyolefins Governs Cross-Linking Kinetics

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JLJie LiJDJin DongXFXinghao Fan

Key Points

  • The aim is to understand how silane distribution affects the cross-linking behavior of polyethylene.
  • Developed a controlled strategy for synthesizing silane copolymers using ring-opening metathesis polymerization (ROMP).
  • Synthesized 6 silane copolymers with different silane distributions by varying feeding sequences.
  • Characterized the synthesized copolymers for gelation time and cross-linking efficiency.
  • Used Monte Carlo simulations to analyze network connectivity and percolation thresholds.
  • Uniform silane distribution significantly enhances cross-linking efficiency.
  • Centralized or gradient silane distributions delay gelation due to aggregation.
  • Localized distributions result in fewer effective cross-links, slowing the overall gelation process.

Abstract

Moisture silane cross-linking has been widely used to cross-link polyethylene. Traditionally, silane groups are introduced into polymer chains through two routes: copolymerizing ethylene with a silane comonomer such as vinyl trimethoxysilane (VTMS) via high-pressure radical polymerization, and grafting VTMS onto the polymer chain through peroxide-initiated radical reactions. However, the inability to control the silane distribution in these processes complicates studies of the dependent cross-linking behavior. In this study, we developed a controlled strategy for synthesizing silane copolymers with tunable silane distributions using ring-opening metathesis polymerization (ROMP) to copolymerize cyclooctene (COE) and silane functionalized COE. By changing the feeding sequence, 6 silane copolymers with different silane distributions were successfully synthesized and characterized. Gelation time analysis revealed that a uniform silane distribution greatly enhances cross-linking efficiency, while centralized or gradient distributions lead to delayed gelation due to silane aggregation and reduced cross-link density. Monte Carlo simulations further elucidated that a homogeneous distribution facilitates superior network connectivity and a faster percolation threshold, whereas localized distributions generate abundant isolated cross-links, thereby retarding the gelation process. This work generates new insights into the relationship between silane distribution and polymer properties, offering a robust platform for designing cross-linked polyolefins with enhanced cross-linking efficiency and tailored functionality.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69a3d811ec16d51705d2e987https://doi.org/10.1021/acs.macromol.5c03328
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