Bio-Ceramics with Clinical Applications - download pdf or read online

By Maria Vallet-Regi

ISBN-10: 1118406753

ISBN-13: 9781118406755

Study on biomaterials has been transforming into long ago 10 years because of the medical wishes in organ and tissue substitute and regeneration. Bioceramics are compatible applicants for plenty of medical purposes, corresponding to bone-like scaffolds, and bone regeneration fabrics. They contain calcium phosphates, silica-based ceramics, corresponding to bioglasses and mesoporous silica, carbon-based fabrics corresponding to carbon nanotubes and graphene, and alumina, zirconia, and silicon nitride. Their medical purposes comprise orthopaedics (artificial hips, knees, elbows and so on) dental implants, bone plates and screws, bone cements, anti-fouling surfaces, drug-delivery structures, and melanoma therapy.

This booklet offers vital info in regards to the synthesis and characterisation of bioceramics, and should be beneficial for all researchers all for this box. The contents hide bioceramics, biomimetism, bioactive ceramics, and inert ceramics. The authors can pay particular realization to give an explanation for the connection among the synthesis techniques and the next medical applications.

Written via Maria Vallet-Regi and a small crew of authors dependent on the Universidad Complutense de Madrid, Spain, the e-book offers a cohesive, based account of the advances and new functions of bioceramics within the scientific global.

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Et al. (2010) Direct write assembly of calcium phosphate scaffolds using a water-based hydrogel. , 6, 218–28. 76. , Luckman, P. et al. (2009) The fabrication and characterization of biodegradable HA/PHBV nanoparticle–polymer composite scaffolds. , 5, 2657–2667. 77. K. et al. (2010) Fatigue and human umbilical cord stem cell seeding characteristics of calcium phosphate–chitosan–biodegradable fiber scaffolds. Biomaterials, 31, 840–847. 78. , Schelfhout, J. et al. (2012) A review of trends and limitations in hydrogel-rapid prototyping for tissue engineering.

8, 3777–3783. 55. , Traykova, T. et al. (2010) Foamed surfactant solution as a template for self-setting injectable hydroxyapatite scaffolds for bone regeneration. , 6, 876–85. 56. T. et al. (2006) Porous poly(DL-lactic-coglycolic acid)/calcium phosphate cement composite for reconstruction of bone defects. , 12, 789–800. 57. Z. R. (2006) Poly(D,L-Lactic ) coated 45S5 Bioglass ® -based scaffolds: processing and characterization. J. Biomed. Mater. , Part A, 77, 445–457. Scaffold Designing 311 58.

Mater. , Part A, 101, 2038–2048. 34511. 80. E. T. (2007) Design and preparation of bioactive glasses with hierarchical pore networks. Chem. , 2139–2141. 81. , Colilla, M. et al. (2011) Preparation of 3-D scaffolds in the SiO2 –P2 O5 system with tailored hierarchical meso-macroporosity. , 7, 1265–1273. 82. , Cuniberti, G. et al. (2011) Three-dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability.

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Bio-Ceramics with Clinical Applications by Maria Vallet-Regi


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