The realm of biomaterials, particularly ceramics, continues to revolutionize the fields of medicine and dentistry through their diverse applications and groundbreaking capabilities. From dental restorations to orthopedic implants and beyond, the biocompatibility, mechanical strength, and durability of ceramics have made them indispensable in the pursuit of enhancing patient care and outcomes. As research progresses, the potential of ceramics in supporting tissue regeneration, promoting bone healing, and creating more effective medical devices and implants is boundless. The ongoing development of bioactive, bio-reactive, and re-absorbable ceramics, along with advancements in nanotechnology and composite materials, promises to further expand the horizons of medical engineering. The journey of ceramics from traditional applications to their pivotal role in regenerative medicine and tissue engineering underscores the transformative power of biomaterials in shaping the future of healthcare. As researchers continue to explore and innovate, the promise of ceramics as a cornerstone of medical and dental advancements remains as robust as the materials themselves, paving the way for a future where the integration of biology and engineering fosters unprecedented healing and restoration possibilities.
Paramsothy M, Ramakrishna S, 2015, Biodegradable Materials for Clinical Applications: A Review. Reviews in Advanced Sciences and Engineering, 4(3): 221–238.
Sheikh Z, Abdallah MN, Hanafi A, et al., 2015, Mechanisms of in Vivo Degradation and Resorption of Calcium Phosphate Based Biomaterials. Materials, 8(11): 5430
Myer K, 2003, Bioceramics, in Standard Handbook of Biomedical Engineering & Design. McGraw Hill Professional, New York.
Ducheyne P, Mauck RL, Smith DH, 2012, Biomaterials in the Repair of Sports Injuries. Nature Materials, 11(8): 652–654.
Ben-Nissan B, 2005, Biomimetics and Bioceramics, in Learning from Nature How to Design New Implantable Biomaterials: From Biomineralization Fundamentals to Biomimetic Materials and Processing Routes. Proceedings of the NATO Advanced Study Institute, Portugal, 13–24 October 2003, Springer Netherlands, Dordrecht, 89–103.
Dorozhkin SV, 2010, Bioceramics of Calcium Orthophosphates. Biomaterials, 31(7): 1465–1485. https://doi.org/10.1016/j.biomaterials.2009.11.050
Plum F, 1987, Anatomy: A Regional Atlas of the Human Body, Third Edition. By Carmine D. Clemente Baltimore, Urban & Schwarzenberg, 1987 439 pp, Illustrated, $42.50. Annals of Neurology, 22(4), 560–560. https://doi.org/10.1002/ana.410220431
Jayesh R, Dhinakarsamy V, 2015, Osseointegration. Journal of Pharmacy and Bioallied Sciences, 7(5): 226–229. https://doi.org/10.4103/0975-7406.155917
Ceramic Biomaterials, 2010, Biomaterials. CRC Press, Florida, 187–215.
Li J, Hastings GW, 1998, Oxide Bioceramics: Inert Ceramic Materials in Medicine and Dentistry, in Handbook of Biomaterial Properties. Springer US, Boston, 340–354.
Vallet-Regi M, Salinas AJ, 2009, Ceramics as Bone Repair Materials, in Bone Repair Biomaterials. Woodhead Publishing, Sawston, 194–230.
Park JB, Lakes RS, 2007, Hard Tissue Replacement — II: Joints and Teeth, in Biomaterials. Springer, New York, 395–458.
Dagnija L, Janis L, Kristine S, 2011, Porous Hydroxyapatite Bioceramic Scaffolds for Drug Delivery and Bone Regeneration. IOP Conference Series: Materials Science and Engineering, 18(19): 192019.
Locs J, Berzina-Cimdina L, Zhurinsh A, 2008, Development of Biomorphic SiC Ceramics for Biomaterial Purposes, in 14th Nordic-Baltic Conference on Biomedical Engineering and Medical Physics: NBC 2008 16–20 June 2008 Riga, Latvia. Springer Berlin, Heidelberg, 48–51.
Dong J, Kojima H, Uemura T, et al., 2001, In Vivo Evaluation of a Novel Porous Hydroxyapatite to Sustain Osteogenesis of Transplanted Bone Marrow-derived Osteoblastic Cells. Journal of Biomedical Materials Research, 57(2): 208–216.
Damien E, Hing K, Saeed S, et al., 2003, A Preliminary Study on the Enhancement of the Osteointegration of a Novel Synthetic Hydroxyapatite Scaffold in Vivo. Journal of Biomedical Materials Research Part A, 66A(2): 241–246. https://doi.org/10.1002/jbm.a.10564
LeGeros RZ, 2002, Properties of Osteoconductive Biomaterials: Calcium Phosphates. Clinical Orthopaedics and Related Research, 395(2002): 81–98.
Barralet JE, Grover L, Gaunt T, 2002, Preparation of Macroporous Calcium Phosphate Cement Tissue Engineering Scaffold. Biomaterials, 23(15): 3063–3072. http://dx.doi.org/10.1016/S0142-9612(01)00401-X
Karageorgiou V, Kaplan D, 2005, Porosity of 3D Biomaterial Scaffolds and Osteogenesis. Biomaterials, 26(27): 5474–5491. http://dx.doi.org/10.1016/j.biomaterials.2005.02.002
Sakamoto A, Yamamoto S, 2010, Glass-ceramics: Engineering Principles and Applications. International Journal of Applied Glass Science, 1(3): 237–247.
Jon Velez, 2016, Ceramic Biomaterials, https://openwetware.org/wiki/Ceramic_Biomaterials,_by_Jon_Velez
Lobo SE, Arinzeh TL, 2010, Biphasic Calcium Phosphate Ceramics for Bone Regeneration and Tissue Engineering Applications. Materials, 3(2): 815–826.
Roy M, Bandyopadhyay A, Bose S, 2017, Chapter 6: Ceramics in Bone Grafts and Coated Implants, in Materials for Bone Disorders. Academic Press, Cambridge, 265–314.