UV-triggered framework-confined strengthening of reprocessable aramid-nanofibre/polyurea nanocomposites

UV-induced mechanical degradation remains a major challenge to the long-term reliability of polymer composites used in harsh environments. Herein, we report a UV-triggered framework-confined strengthening (UV-FCS) strategy by integrating a rigid aramid nanofibre (ANF) skeleton with a UV-responsive photoinitiator, bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (BAPO), in a polyurea elastomer. The ANF skeleton provides nanoconfinement and hydrogen-bonding sites that immobilize polymer chain segments and restrict molecular mobility. Upon UV irradiation, BAPO anchored on the ANF framework generates initiating radicals, which promote localized free-radical polymerization of terminal C C groups in the confined interfacial region. This process reinforces the interfacial network while suppressing UV-induced structural deterioration. Before UV irradiation, the optimized nanocomposite exhibited a 93.4% higher tensile strength than the neat matrix, increasing from 19.98 to 38.64 MPa; after 24 h of UV irradiation, its tensile strength further increased to 45.94 MPa, corresponding to an 18.9% UV-induced increase, while the final value was 129.9% higher than that of the neat matrix, accompanied by a 122.07% enhancement in toughness and a high elongation at break of 850 ± 42%. SEM observations reveal a more compact fracture morphology after UV irradiation, and DMA analysis supports restricted chain relaxation after irradiation. The nanocomposite also shows improved damage tolerance and impact-protection performance, together with promising solvent-assisted reprocessability. This work provides a framework-confined interfacial reinforcement strategy for developing mechanically robust and UV-adaptive elastomeric nanocomposites for protective applications.

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Journal
Progress in Organic Coatings
Published
2026-09-26
DOI
https://doi.org/10.1016/j.porgcoat.2026.110647
Primary Topic
Polymer Nanocomposites and Properties
Type
article
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UV-triggered framework-confined strengthening of reprocessable aramid-nanofibre/polyurea nanocomposites

龚雪, Qingshi Meng, Shuangshan Li, Ziqi Gao et al.
Progress in Organic Coatings
Polymer Nanocomposites and Properties
article

UV-triggered framework-confined strengthening of reprocessable aramid-nanofibre/polyurea nanocomposites

龚雪, Qingshi Meng, Shuangshan Li, Ziqi Gao, Bin Wu, Jun Ma, Sensen Han
article en

Abstract

UV-induced mechanical degradation remains a major challenge to the long-term reliability of polymer composites used in harsh environments. Herein, we report a UV-triggered framework-confined strengthening (UV-FCS) strategy by integrating a rigid aramid nanofibre (ANF) skeleton with a UV-responsive photoinitiator, bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (BAPO), in a polyurea elastomer. The ANF skeleton provides nanoconfinement and hydrogen-bonding sites that immobilize polymer chain segments and restrict molecular mobility. Upon UV irradiation, BAPO anchored on the ANF framework generates initiating radicals, which promote localized free-radical polymerization of terminal C C groups in the confined interfacial region. This process reinforces the interfacial network while suppressing UV-induced structural deterioration. Before UV irradiation, the optimized nanocomposite exhibited a 93.4% higher tensile strength than the neat matrix, increasing from 19.98 to 38.64 MPa; after 24 h of UV irradiation, its tensile strength further increased to 45.94 MPa, corresponding to an 18.9% UV-induced increase, while the final value was 129.9% higher than that of the neat matrix, accompanied by a 122.07% enhancement in toughness and a high elongation at break of 850 ± 42%. SEM observations reveal a more compact fracture morphology after UV irradiation, and DMA analysis supports restricted chain relaxation after irradiation. The nanocomposite also shows improved damage tolerance and impact-protection performance, together with promising solvent-assisted reprocessability. This work provides a framework-confined interfacial reinforcement strategy for developing mechanically robust and UV-adaptive elastomeric nanocomposites for protective applications.

Progress in Organic CoatingsVol. 222
Shenyang Aerospace University (CN), University of South Australia (AU), UCL Australia (AU), The University of Adelaide (AU)
Industry, innovation and infrastructure
Openalex Percentile: Top 24%
Polymer Nanocomposites and Properties
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