Learning from nature how to design new implantable biomaterials : from biomineralization fundamentals to biomimetic materials and processing routes

The development of materials for any replacement or regeneration application should be based on the thorough understanding of the structure to be substituted. This is true in many fields, but particularly exigent in substitution and regeneration medicine. The demands upon the material properties lar...

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Bibliografische gegevens
Coauteur: NATO advanced study institute on learning from nature how to design new implantable biomaterials: from biomineralization fundamentals to biomimetic materials and processing routes (Auteur)
Andere auteurs: Reis, R. L. (Publishing director), Weiner, S. (Publishing director)
Formaat: Livre numérique
Taal:Anglais
Gepubliceerd in: Dordrecht : Springer Netherlands 2005.
Cham : Springer Nature
Editie:1st ed. 2005.
Reeks:NATO Science Series II: Mathematics, Physics and Chemistry, Mathematics, Physics and Chemistry 171
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Opmerking: Notice rédigée d'après la consultation, 2012-02-16
L'impression du document génère xv-233 p.
Titre provenant de la p. de titre du document numérisé
Numérisation de l'édition de Dordrecht : Kluwer, 2004
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Edition sous un autre format:• Learning from nature how to design new implantable biomaterials, from biomineralization fundamentals to biomimetic materials and processing routes, ed. by R.L. Reis,... and S. Weiner,..., Dordrecht, Kluwer Academic Publishers, 2004, 1 vol. (XV-233 p.), NATO science series, 1-4020-2644-7
Omschrijving
Samenvatting:The development of materials for any replacement or regeneration application should be based on the thorough understanding of the structure to be substituted. This is true in many fields, but particularly exigent in substitution and regeneration medicine. The demands upon the material properties largely depend on the site of application and the function it has to restore. Ideally, a replacement material should mimic the living tissue from a mechanical, chemical, biological and functional point of view. Of course this is much easier to write down than to implement in clinical practice. Mineralized tissues such as bones, tooth and shells have attracted, in the last few years, considerable interest as natural anisotropic composite structures with adequate mechanical properties. In fact, Nature is and will continue to be the best materials scientist ever. Who better than nature can design complex structures and control the intricate phenomena (processing routes) that lead to the final shape and structure (from the macro to the nano level) of living creatures? Who can combine biological and physico-chemical mechanisms in such a way that can build ideal structure-properties relationships? Who, else than Nature, can really design smart structural components that respond in-situ to exterior stimulus, being able of adapting constantly their microstructure and correspondent properties? In the described philosophy line, mineralized tissues and biomineralization processes are ideal examples to learn-from for the materials scientist of the future
Beschrijving item:Notice rédigée d'après la consultation, 2012-02-16
L'impression du document génère xv-233 p.
Titre provenant de la p. de titre du document numérisé
Numérisation de l'édition de Dordrecht : Kluwer, 2004
L'accès à cette ressource est réservé aux usagers des établissements qui en ont fait l'acquisition
Archives Springer e-books (Licence nationale)
Archives Springer e-books (Licence nationale)
Formaat:Nécessite un lecteur de fichier PDF
Bibliografie:Notes bibliogr. Index
ISBN:140202648X (en ligne)
9781402026485 (en ligne)
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