Articles producció científicaEnginyeria Mecànica

Tunable dual-curing acrylic/epoxy systems for 3D printing with enhanced joint performance via carbon nanotubes

  • Identification data

    Identifier:  imarina:9462615
    Authors:  Escriba-Flores, A A; Fernandez-Francos, X; Ferrando, F; Fabregat-Sanjuan, A
    Abstract:
    This study presents a novel dual-curing strategy for low-viscosity, high-performance acrylic/epoxy systems, which enables precise control over the final density of the co-network structure and its thermo-mechanical properties. Unlike conventional acrylate/epoxy dual-curing systems, this new strategy incorporates a long chain extender (polyethylene glycol) covalently bonded within the epoxy network to specifically reduce the crosslinking density achieved in the second curing stage. This allows for fine-tuning of the material's mechanical properties, facilitating adjustments to the elastic modulus from 3 MPa to 2500 MPa and achieving maximum tensile strength values of 80 MPa, while maintaining a low viscosity of less than 35 mPa s, making it ideal for 3D printing vat photopolymerization applications. Additionally, the material exhibits good thermal stability and excellent printed components resolution, thereby opening a wide range of design options for achieving optimal configurations related to mechanical preferences and precise geometric accuracy. The work further includes an analysis of tensile strength in bonded joints, which is a crucial parameter in structural design, particularly for the fabrication of large parts through bonding. Moreover, the project proposes the incorporation of functionalized multi-walled carbon nanotubes (MWCNT-COOH) to enhance interfacial adhesion between phases.
  • Others:

    Link to the original source: https://www.sciencedirect.com/science/article/pii/S0032386125007542?via%3Dihub
    APA: Escriba-Flores, A A; Fernandez-Francos, X; Ferrando, F; Fabregat-Sanjuan, A (2025). Tunable dual-curing acrylic/epoxy systems for 3D printing with enhanced joint performance via carbon nanotubes. Polymer, 334(), 128768-. DOI: 10.1016/j.polymer.2025.128768
    Paper original source: Polymer. 334 128768-
    Article's DOI: 10.1016/j.polymer.2025.128768
    Journal publication year: 2025
    Entity: Universitat Rovira i Virgili
    Paper version: info:eu-repo/semantics/publishedVersion
    Record's date: 2025-08-02
    URV's Author/s: Fabregat Sanjuan, Albert / Fernández Francos, Xavier / Ferrando Piera, Francesc
    Department: Enginyeria Mecànica
    Licence document URL: https://repositori.urv.cat/ca/proteccio-de-dades/
    Publication Type: Journal Publications
    Author, as appears in the article.: Escriba-Flores, A A; Fernandez-Francos, X; Ferrando, F; Fabregat-Sanjuan, A
    licence for use: https://creativecommons.org/licenses/by/3.0/es/
    Thematic Areas: Astronomia / física, Biotecnología, Ciências agrárias i, Ciências biológicas i, Ciências biológicas ii, Engenharias ii, Engenharias iii, Engenharias iv, Farmacia, Interdisciplinar, Materiais, Materials chemistry, Medicina ii, Organic chemistry, Polymer science, Polymers and plastics, Química
    Author's mail: a.fabregat@urv.cat, xavier.fernandez@urv.cat
  • Keywords:

    Additive manufacturing
    Cur
    Dlp 3d printing
    Dual curing
    Functionalization
    High tensile strength
    Kinetics
    Methacrylate
    Mwcnts-coo
    Mwcnts-cooh
    Nanoadhesive
    Radical polymerization
    Resins
    Materials Chemistry
    Organic Chemistry
    Polymer Science
    Polymers and Plastics
    Astronomia / física
    Biotecnología
    Ciências agrárias i
    Ciências biológicas i
    Ciências biológicas ii
    Engenharias ii
    Engenharias iii
    Engenharias iv
    Farmacia
    Interdisciplinar
    Materiais
    Medicina ii
    Química
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