Polymer Network Evolution Induced by Dual-Crosslinking Architectures in UV-Curable Waterborne Polyurethanes

Dual-crosslinked waterborne polyurethane (WPU) coatings offer high performance, yet how sequential crosslinking governs the dynamic evolution of internal hydrogen bonding remains poorly understood. Herein, a dual-crosslinking strategy was developed by coupling castor oil (CO) thermal pre-branching with photo-curing monomers of contrasting functionalities: hydroxyl-bearing monofunctional acrylate (2-hydroxyethyl methacrylate, HEMA) and trifunctional acrylate (pentaerythritol triacrylate, PETA). The interplay between covalent crosslinking and physical hydrogen-bonding reorganization was systematically investigated using FTIR carbonyl deconvolution, gel fraction, crosslinking density, and dynamic mechanical analysis. Spectral deconvolution demonstrated that dual-crosslinking reorganizes hard-segment microenvironments rather than merely increasing hydrogen-bond density. Specifically, CO pre-branching facilitated supramolecular association, where CO1 selectively promoted localized, highly ordered microdomains (33.8% strongly bonded carbonyls in WPU-CO1-TA) and CO2 expanded the overall hydrogen-bonded population. DMA further revealed that these topological variations directly dictate segmental relaxation and network integrity across the glass transition. Overall, this preliminary study establishes that tailoring photo-monomer functionality alongside bio-based branching regulates physical hydrogen-bonding redistribution, providing a rational design strategy for advanced dual-crosslinked WPU films.

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Publication Details

Journal
Polymers
Published
2026-09-27
DOI
https://doi.org/10.3390/polym18192354
Primary Topic
Polymer composites and self-healing
Type
article
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Polymer Network Evolution Induced by Dual-Crosslinking Architectures in UV-Curable Waterborne Polyurethanes

Jhu‐Lin You, Shu‐Mei Chang, Kai‐Yen Chin, Po-Jui Hsieh
Polymers
Polymer composites and self-healing
article

Polymer Network Evolution Induced by Dual-Crosslinking Architectures in UV-Curable Waterborne Polyurethanes

Jhu‐Lin You, Shu‐Mei Chang, Kai‐Yen Chin, Po-Jui Hsieh
article en

Abstract

Dual-crosslinked waterborne polyurethane (WPU) coatings offer high performance, yet how sequential crosslinking governs the dynamic evolution of internal hydrogen bonding remains poorly understood. Herein, a dual-crosslinking strategy was developed by coupling castor oil (CO) thermal pre-branching with photo-curing monomers of contrasting functionalities: hydroxyl-bearing monofunctional acrylate (2-hydroxyethyl methacrylate, HEMA) and trifunctional acrylate (pentaerythritol triacrylate, PETA). The interplay between covalent crosslinking and physical hydrogen-bonding reorganization was systematically investigated using FTIR carbonyl deconvolution, gel fraction, crosslinking density, and dynamic mechanical analysis. Spectral deconvolution demonstrated that dual-crosslinking reorganizes hard-segment microenvironments rather than merely increasing hydrogen-bond density. Specifically, CO pre-branching facilitated supramolecular association, where CO1 selectively promoted localized, highly ordered microdomains (33.8% strongly bonded carbonyls in WPU-CO1-TA) and CO2 expanded the overall hydrogen-bonded population. DMA further revealed that these topological variations directly dictate segmental relaxation and network integrity across the glass transition. Overall, this preliminary study establishes that tailoring photo-monomer functionality alongside bio-based branching regulates physical hydrogen-bonding redistribution, providing a rational design strategy for advanced dual-crosslinked WPU films.

PolymersVol. 18(19)
National Taipei University of Technology (TW), National Defense University (TW)
Clean water and sanitation
Openalex Percentile: Top 24%
Polymer composites and self-healing
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Polymer Network Evolution Induced by Dual-Crosslinking Architectures in UV-Curable Waterborne Polyurethanes — Jhu‐Lin You, Shu‐Mei Chang, et al. · Polymers (2026) | TGRS Research Map | TGRS