TY - JOUR
T1 - The sintering behaviour and mechanical properties of hydroxyapatite - Based composites for bone tissue regeneration
AU - Tecu, Camelia
AU - Antoniac, Iulian
AU - Goller, Gultekin
AU - Yavas, Baris
AU - Gheorghe, Dan
AU - Antoniac, Aurora
AU - Ciuca, Ion
AU - Semenescu, Augustin
AU - Raiciu, Anca Daniela
AU - Cristescu, Ioan
N1 - Publisher Copyright:
© 2019 Syscom 18 SRL. All rights reserved.
PY - 2019
Y1 - 2019
N2 - The developement and regeneration of healthy bone tissue is a complex process that includes the interaction of different cell types and requires a set of coordinated processes. The loss of bone tissue may occur due to various reasons: surgical removal, bone trauma (i.e., fractures) or systemic bone loss (i.e., osteoporosis). When the natural bone tissue is destroyed, the regeneration capacity of the bone is not always satisfactor y. The result consists therefore in many functional and structural aberrations. In order to improve and accelerate the healing process, bone substitutes have been developed. Hydroxyapatite has been widely used in bone applications due to its excellent biocompatibility, osteoconductivity and bioactivity [1, 2]. The objective of this research is to obtain a new composite biomaterial that can be used as bone substitute. In this study, bovine hydroxyapatite obtained from freshly calcined bovine femur was used. The objective of this research is to obtain a new composite biomaterial that can be used as bone substitute. The experimental composite samples were obtained using bovine hydroxyapatite as matrix and tricalcium phosphate, respectively, magnesium oxide as reinforcement materials. The synthesis process of these new biomaterial composites, the effect of chemical composition, surface structure, chemical and phase composition as well as mechanical features have been investigated.
AB - The developement and regeneration of healthy bone tissue is a complex process that includes the interaction of different cell types and requires a set of coordinated processes. The loss of bone tissue may occur due to various reasons: surgical removal, bone trauma (i.e., fractures) or systemic bone loss (i.e., osteoporosis). When the natural bone tissue is destroyed, the regeneration capacity of the bone is not always satisfactor y. The result consists therefore in many functional and structural aberrations. In order to improve and accelerate the healing process, bone substitutes have been developed. Hydroxyapatite has been widely used in bone applications due to its excellent biocompatibility, osteoconductivity and bioactivity [1, 2]. The objective of this research is to obtain a new composite biomaterial that can be used as bone substitute. In this study, bovine hydroxyapatite obtained from freshly calcined bovine femur was used. The objective of this research is to obtain a new composite biomaterial that can be used as bone substitute. The experimental composite samples were obtained using bovine hydroxyapatite as matrix and tricalcium phosphate, respectively, magnesium oxide as reinforcement materials. The synthesis process of these new biomaterial composites, the effect of chemical composition, surface structure, chemical and phase composition as well as mechanical features have been investigated.
KW - Bone regeneration
KW - Bovine hydroxyapatite
KW - Composites
KW - Magnesium
UR - http://www.scopus.com/inward/record.url?scp=85073457067&partnerID=8YFLogxK
U2 - 10.37358/mp.19.3.5246
DO - 10.37358/mp.19.3.5246
M3 - Article
AN - SCOPUS:85073457067
SN - 0025-5289
VL - 56
SP - 644
EP - 648
JO - Materiale Plastice
JF - Materiale Plastice
IS - 3
ER -