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May 13, 2026Materials2 citationsOpen Access

Design and Characterization of 3D Printed Auxetic PLA-HA Composite Scaffolds for Biomedical Application

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MBMohammed Amine BenziadaASAntonio Javier Sánchez‐HerenciaIDIsamil Daoud

Key Points

  • The aim is to design and characterize 3D printed auxetic PLA-HA composite scaffolds for biomedical applications.
  • Designed auxetic scaffold structures using PLA and PLA-HA composites
  • Produced scaffolds using Fused Filament Fabrication
  • Characterized samples through X-ray diffraction, Raman spectroscopy, and mechanical testing
  • Analyzed degradation behavior in PBS media
  • Hydrophilicity improved with hydroxyapatite addition, reducing water contact angle by about 28%
  • Mechanical properties enhanced: hardness increased by 15%, Young's modulus by 53%
  • PLA-HA composites showed reduced mechanical properties after 15 days of biodegradation
  • Auxetic structures maintained shape during compression tests

Abstract

Additive manufacturing (AM) techniques are becoming key factors for repairing and replacing damaged bone. These techniques enable the customization of implants, which can be tailored to the specific area to be treated or healed. Additionally, the combination of absorbable and osteoconductive biomaterials with 3D printing could eliminate second surgeries to remove implants, which is particularly relevant in pediatric and geriatric patients. The capabilities of AM in this context affect not only the external shape but also the internal microarchitecture, where the arrangement of struts to develop complex infills enhances relevant properties such as specific strength, degradation rate, and vascularization. In this study, auxetic scaffold structures made of both polylactic acid (PLA) and a PLA-hydroxyapatite (PLA-HA) composite with 40 wt% of hydroxyapatite (HA) are designed and produced using Fused Filament Fabrication (FFF). Samples of PLA and PLA-HA were 3D printed in dense samples and with auxetic infills. In dense samples, the characterization is performed by X-ray diffraction (XRD), Raman spectroscopy, wettability tests, nanoindentation, and tribological assessments. Two auxetic cellular models have been tested after degradation in PBS media, and their microstructural, structural, and mechanical properties are analyzed. Results show that the addition of hydroxyapatite (HA) significantly improves the hydrophilicity of the PLA matrix, as evidenced by a decrease in water contact angle from 73.4 ± 4.4° to 52.6 ± 2.8° (≈28% reduction), while also enhancing its mechanical and tribological properties, with hardness increasing from 207 ± 30 MPa to 241 ± 28 MPa (≈15%) and Young’s modulus from 4.08 ± 0.55 GPa to 6.24 ± 0.61 GPa (≈53%). Additionally, biodegradation of PLA-HA composites reveals a significant reduction in mechanical properties after 15 days, while the auxetic re-entrant structures mostly retain their shape during compression testing.

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Cite This Study

Benziada et al. (2026) studied this question.

synapsesocial.com/papers/6a03cb781c527af8f1ecf3a6https://doi.org/10.3390/ma19101972
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