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3D Printed Piezoelectric BaTiO3/Polyhydroxybutyrate Nanocomposite Scaffolds for Bone Tissue Engineering
Giovanna Strangis1, Massimiliano Labardi2, Giuseppe Gallone1
1Department of Civil and Industrial Engineering, University of Pisa, Largo L. Lazzarino 2, 56122 Pisa, Italy.
New piezoelectric scaffolds using polyhydroxybutyrate and barium titanate nanoparticles show promise for bone tissue engineering. These advanced materials mimic natural bone signals, enhancing tissue regeneration for significant health problems.
Area of Science:
- Biomaterials Science
- Tissue Engineering
- Nanotechnology
Background:
- Bone defects represent a global health challenge.
- Biomaterial scaffolds are crucial for stimulating tissue regeneration.
- Mimicking natural bio-signals is key for effective tissue engineering.
Purpose of the Study:
- To develop and characterize novel piezoelectric scaffolds.
- To incorporate barium titanate nanoparticles into a polyhydroxybutyrate matrix.
- To evaluate scaffolds for vascularized bone tissue engineering applications.
Main Methods:
- Nanocomposites of polyhydroxybutyrate (PHB) and barium titanate (BaTiO3) were fabricated using mixing and extrusion.
- Morphological, thermal, mechanical, and piezoelectric properties were analyzed.
- 3D printing was employed to create porous scaffolds, followed by biodegradation testing.
Main Results:
- Scanning electron microscopy confirmed good nanoparticle dispersion.
- Increased barium titanate content significantly enhanced Young's modulus, compressive strength, and piezoelectric coefficient (d31 up to 37 pm/V).
- 3D printed scaffolds exhibited controlled pore sizes (0.60-0.77 mm), good mechanical stability, and low mass loss (~4%) after 8 weeks of biodegradation.
Conclusions:
- The developed BaTiO3/PHB nanocomposites possess excellent piezoelectric and mechanical properties.
- 3D printed scaffolds demonstrate suitability for bone tissue engineering.
- These findings present a promising strategy for creating vascularized bone tissue.
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