Aug 2026· Polymers· Vol 18, pp. 2058· 0 citations· 47 references
Medicine
Abstract
The development of sustainable coatings that combine reprocessability with active functionalities remains a central challenge for the composites sector. In this work, a healable, electrically conductive coating was formulated using epoxidized castor oil (ECO) as a bio-based matrix, dibutyl phosphate (DBP) as a transesterification catalyst, and short recycled carbon fibres (RCFs, 2 mm in length) as a conductive filler at loadings of 10 and 20 phr. Formulations were UV-cured via cationic photopolymerization and characterized across the full liquid-to-solid processing chain. FT-IR and photo-DSC showed that increasing RCF content progressively reduced curing rate and conversion, an effect attributed to light scattering/absorption by the fibres and restricted chain mobility, although gel content remained above 98% in all cases. DMTA showed that RCF did significantly affect the glass transition temperature but markedly increased the rubbery storage modulus and apparent crosslink density, consistent with a physical reinforcement mechanism. Stress relaxation tests confirmed the dynamic bond exchange behaviour in all formulations, with the apparent activation energy decreasing from 112 kJ/mol for the neat resin to 33–34 kJ/mol upon RCF incorporation. This significant reduction suggests that the presence of RCF facilitates the bond-exchange process, potentially through interfacial interactions between the polymer network and the fibre surface. However, the specific molecular mechanism responsible for this effect cannot be established from the present data. Electrical conductivity peaked at 10 phr RCF (3.6 × 10−3 S/m), enabling measurable Joule heating, while the 20 phr formulation showed reduced conductivity linked to voids and lower conversion. Thermally triggered healing at 120 °C for 6 h restored mechanical integrity, which is higher than reference values, demonstrating the coating’s capacity for repeated repair through its dynamic covalent network.
The main objective of this study is to develop titania-reinforced photocurable acrylate nanocomposites for high-performance Digital Light Processing (DLP)-based additive manufacturing applications. UV-curable Nippon 114 BS and Nippon 104 YW thermosetting acrylate resins were incorporated with TiO2 nanoparticles at lo...
Tarun Vakiti, Srinath Suranani, R. Kuppusamy· Industrial & Engineering...· 0 citations
This study presents the development of high-performance radiation curable acrylate coatings reinforced with functionalized carbon nanotubes (F-CNTs) synthesized from waste plastic bottles by chemical vapor deposition method for antimicrobial applications. Epoxy and polyurethane acrylate resins (Ebecryl 600 and Ebecryl...
Nur Zetty Amirah Kadri, M. Harun, Izzuddin Mohd Zaharuddin et al.· Journal of Material Science...· 0 citations
To address the health hazards posed by the BPA epoxy resins traditionally used in carbon fiber reinforced polymers (CFRP), a high-performance and recyclable epoxy resin (EP) was developed by integrating two bio-based components—phenolic compounds from straw tar (ST) and lignin (LI)—with a flexible long-chain curing a...
Zhan-Peng Jiang, Shu-Tong Zu, Chuan-Peng Li et al.· ACS Sustainable Chemistry &a...· 0 citations
Growing environmental concerns associated with petroleum‐based plastics have intensified the demand for sustainable, biodegradable materials for packaging applications. Sodium alginate is a natural polysaccharide with excellent biodegradability, biocompatibility, and film‐forming ability; however, its high moisture...
Sofia de Oliveira Pires, C. D. da Silveira, A. F. de Oliveira· Journal of Applied Polymer S...· 0 citations
Vitrimeric nanocomposites (VNCs) are futuristic materials exhibiting multifunctional properties with sustainable capabilities. However, achieving filler-derived functionalities harmoniously with their dynamic characteristics is highly momentous in VNCs. Herein, the vitrimeric thiol-epoxy matrix incorporating tyre-waste...
V. B, Priyanka Halsi, Ajay Gupta et al.· Polymers· 0 citations
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