Additively-manufactured PEEK/HA porous scaffolds with highly-controllable mechanical properties and excellent biocompatibility
Polyetheretherketone (PEEK) was widely applied into fabricating of orthopaedic implants, benefitting its excellent biocompatibility and similar mechanical properties to native bones. However, the inertness of PEEK hinders its integration with the surrounding bone tissue. Here PEEK scaffolds with a s...
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Veröffentlicht in: | Materials Science & Engineering C 2021-09, Vol.128, p.112333-112333, Article 112333 |
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Sprache: | eng |
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Zusammenfassung: | Polyetheretherketone (PEEK) was widely applied into fabricating of orthopaedic implants, benefitting its excellent biocompatibility and similar mechanical properties to native bones. However, the inertness of PEEK hinders its integration with the surrounding bone tissue. Here PEEK scaffolds with a series of hydroxyapatite (HA) contents in gradient were manufactured via fused filament fabrication (FFF) 3D printing techniques. The influence of the pore size, HA content and printing direction on the mechanical properties of the PEEK/HA scaffolds was systematically evaluated. By adjusting the pore size and HA contents, the elastic modulus of the PEEK/HA scaffolds can be widely tuned in the range of 624.7–50.6 MPa, similar to the variation range of natural cancellous bone. Meanwhile, the scaffolds exhibited higher Young's modulus and lower compressive strength along Z printing direction. The mapping relationship among geometric parameters, HA content, printing direction and mechanical properties was established, which gave more accurate predictions and controllability of the modulus and strength of scaffolds. The PEEK/HA scaffolds with the micro-structured surface could promote cell attachment and mineralization in vitro. Therefore, the FFF-printed PEEK/HA composites scaffolds can be a good candidate for bone grafting and tissue engineering.
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•PEEK/HA composites scaffolds manufactured via FFF-3D printing technology possesses highly-tunable mechanical properties•The modulus and strength of composites scaffolds could be adjusted ranging from 624.7-50.6 and 35.2-2.2 MPa, respectively.•Mapping relationship was established among geometric parameters, HA content, and compressive modulus.•The PEEK/HA composites with the micro-structured surface could promote cell attachment and mineralization in vitro. |
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ISSN: | 0928-4931 1873-0191 |
DOI: | 10.1016/j.msec.2021.112333 |