Handbook of 3D Printing in Biomedical Applications (eBook, ePUB)
Redaktion: Aufa, A. N.; Ilyas, R. A.; Zaki Hassan, Mohamad
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Handbook of 3D Printing in Biomedical Applications (eBook, ePUB)
Redaktion: Aufa, A. N.; Ilyas, R. A.; Zaki Hassan, Mohamad
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This handbook provides an in-depth exploration of the materials utilized in 3D bioprinting, shedding light on their properties, applications, and advancements, and focuses on the fundamental principles underpinning additive manufacturing techniques, offering readers a comprehensive understanding of this innovative field.
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- Größe: 18.33MB
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This handbook provides an in-depth exploration of the materials utilized in 3D bioprinting, shedding light on their properties, applications, and advancements, and focuses on the fundamental principles underpinning additive manufacturing techniques, offering readers a comprehensive understanding of this innovative field.
Dieser Download kann aus rechtlichen Gründen nur mit Rechnungsadresse in A, B, BG, CY, CZ, D, DK, EW, E, FIN, F, GR, HR, H, IRL, I, LT, L, LR, M, NL, PL, P, R, S, SLO, SK ausgeliefert werden.
Produktdetails
- Produktdetails
- Verlag: Taylor & Francis eBooks
- Erscheinungstermin: 30. Mai 2025
- Englisch
- ISBN-13: 9781040348833
- Artikelnr.: 73863287
- Verlag: Taylor & Francis eBooks
- Erscheinungstermin: 30. Mai 2025
- Englisch
- ISBN-13: 9781040348833
- Artikelnr.: 73863287
- Herstellerkennzeichnung Die Herstellerinformationen sind derzeit nicht verfügbar.
A.N. Aufa is with the Faculty of Artificial Intelligence, Universiti Teknologi Malaysia. Mohamad Zaki Hassan is Senior Lecturer in the Faculty of Artificial Intelligence, Universiti Teknologi Malaysia. R.A. Ilyas is Senior Lecturer at the Universiti Teknologi Malaysia and holds Fellowships with the Institute of Advanced Materials, Sweden, and the International Society for Development and Sustainability, Japan.
0. Prelims. 1. Fundamental Concepts of Additive Manufacturing in the
Biomedical Field. 2. Additive Manufacturing of Biocompatible Polymers and
Their Future Trend in the Biomedical Field. 3. Materials in Biomedical
Additive Manufacturing and Their Challenges. 4. Current Trend of Additive
Manufacturing in Biomedical Applications. 5. Applications of 3D Bioprinting
in Anatomical Structure. 6. In Vivo Studies of 3D Bioprinting. 7. In Vitro
Studies of 3D Printing and 3D Bioprinting in Drug Delivery. 8. Development
of 3D Printable Collagen, Gelatin, and Chondroitin Sulfate Hydrogels for
Implantable Tissue Applications. 9. Development of Gelatin, Collagen and
Chondroitin as Bioink in 3D Bioprinting. 10. Utilization of Gelatin,
Collagen, and Chondroitin Sulfate in 3D Bioprinting. 11. Silk Fibroin
Nanofiber, Nano-Chitin, and Chitosan: Promising Biomaterials in 3D
Biofabrication. 12. Bioink Technology In 3D Bioprinting and Their
Improvement. 13. Polysaccharide-Based Bioinks and Hydrogel Technology in 3D
Bioprinting. 14. Innovation and Patentability of Biopolymers for 3D
Bioprinting in Biomedical Applications. 15. 3D Bioprinting Technique of
Synthetic Polymers. 16. Synthetic Composites for 3D Bioprinting
Applications. 17. 3D Bioprinting in Orthodontics. 18. The Emergence of
Bioink 3D Printing in Dental Orthodontics. 19. Pellet Extrusion Additive
Manufacturing of Carbon Nanotube Reinforced PEEK-Based Composites for
Biomedical Applications. 20. Clinical Status, Manufacturing Issue, Laws,
and Future Perspectives.
Biomedical Field. 2. Additive Manufacturing of Biocompatible Polymers and
Their Future Trend in the Biomedical Field. 3. Materials in Biomedical
Additive Manufacturing and Their Challenges. 4. Current Trend of Additive
Manufacturing in Biomedical Applications. 5. Applications of 3D Bioprinting
in Anatomical Structure. 6. In Vivo Studies of 3D Bioprinting. 7. In Vitro
Studies of 3D Printing and 3D Bioprinting in Drug Delivery. 8. Development
of 3D Printable Collagen, Gelatin, and Chondroitin Sulfate Hydrogels for
Implantable Tissue Applications. 9. Development of Gelatin, Collagen and
Chondroitin as Bioink in 3D Bioprinting. 10. Utilization of Gelatin,
Collagen, and Chondroitin Sulfate in 3D Bioprinting. 11. Silk Fibroin
Nanofiber, Nano-Chitin, and Chitosan: Promising Biomaterials in 3D
Biofabrication. 12. Bioink Technology In 3D Bioprinting and Their
Improvement. 13. Polysaccharide-Based Bioinks and Hydrogel Technology in 3D
Bioprinting. 14. Innovation and Patentability of Biopolymers for 3D
Bioprinting in Biomedical Applications. 15. 3D Bioprinting Technique of
Synthetic Polymers. 16. Synthetic Composites for 3D Bioprinting
Applications. 17. 3D Bioprinting in Orthodontics. 18. The Emergence of
Bioink 3D Printing in Dental Orthodontics. 19. Pellet Extrusion Additive
Manufacturing of Carbon Nanotube Reinforced PEEK-Based Composites for
Biomedical Applications. 20. Clinical Status, Manufacturing Issue, Laws,
and Future Perspectives.
0. Prelims. 1. Fundamental Concepts of Additive Manufacturing in the
Biomedical Field. 2. Additive Manufacturing of Biocompatible Polymers and
Their Future Trend in the Biomedical Field. 3. Materials in Biomedical
Additive Manufacturing and Their Challenges. 4. Current Trend of Additive
Manufacturing in Biomedical Applications. 5. Applications of 3D Bioprinting
in Anatomical Structure. 6. In Vivo Studies of 3D Bioprinting. 7. In Vitro
Studies of 3D Printing and 3D Bioprinting in Drug Delivery. 8. Development
of 3D Printable Collagen, Gelatin, and Chondroitin Sulfate Hydrogels for
Implantable Tissue Applications. 9. Development of Gelatin, Collagen and
Chondroitin as Bioink in 3D Bioprinting. 10. Utilization of Gelatin,
Collagen, and Chondroitin Sulfate in 3D Bioprinting. 11. Silk Fibroin
Nanofiber, Nano-Chitin, and Chitosan: Promising Biomaterials in 3D
Biofabrication. 12. Bioink Technology In 3D Bioprinting and Their
Improvement. 13. Polysaccharide-Based Bioinks and Hydrogel Technology in 3D
Bioprinting. 14. Innovation and Patentability of Biopolymers for 3D
Bioprinting in Biomedical Applications. 15. 3D Bioprinting Technique of
Synthetic Polymers. 16. Synthetic Composites for 3D Bioprinting
Applications. 17. 3D Bioprinting in Orthodontics. 18. The Emergence of
Bioink 3D Printing in Dental Orthodontics. 19. Pellet Extrusion Additive
Manufacturing of Carbon Nanotube Reinforced PEEK-Based Composites for
Biomedical Applications. 20. Clinical Status, Manufacturing Issue, Laws,
and Future Perspectives.
Biomedical Field. 2. Additive Manufacturing of Biocompatible Polymers and
Their Future Trend in the Biomedical Field. 3. Materials in Biomedical
Additive Manufacturing and Their Challenges. 4. Current Trend of Additive
Manufacturing in Biomedical Applications. 5. Applications of 3D Bioprinting
in Anatomical Structure. 6. In Vivo Studies of 3D Bioprinting. 7. In Vitro
Studies of 3D Printing and 3D Bioprinting in Drug Delivery. 8. Development
of 3D Printable Collagen, Gelatin, and Chondroitin Sulfate Hydrogels for
Implantable Tissue Applications. 9. Development of Gelatin, Collagen and
Chondroitin as Bioink in 3D Bioprinting. 10. Utilization of Gelatin,
Collagen, and Chondroitin Sulfate in 3D Bioprinting. 11. Silk Fibroin
Nanofiber, Nano-Chitin, and Chitosan: Promising Biomaterials in 3D
Biofabrication. 12. Bioink Technology In 3D Bioprinting and Their
Improvement. 13. Polysaccharide-Based Bioinks and Hydrogel Technology in 3D
Bioprinting. 14. Innovation and Patentability of Biopolymers for 3D
Bioprinting in Biomedical Applications. 15. 3D Bioprinting Technique of
Synthetic Polymers. 16. Synthetic Composites for 3D Bioprinting
Applications. 17. 3D Bioprinting in Orthodontics. 18. The Emergence of
Bioink 3D Printing in Dental Orthodontics. 19. Pellet Extrusion Additive
Manufacturing of Carbon Nanotube Reinforced PEEK-Based Composites for
Biomedical Applications. 20. Clinical Status, Manufacturing Issue, Laws,
and Future Perspectives.