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Titlebook: Biomaterials; An Introduction Joon B. Park,Roderic S. Lakes Textbook 2007Latest edition Springer-Verlag New York 2007 Biomaterial.Biomateri

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pedic implants, and expanded treatment of ceramic materials and implants. All figures have been redrawn and more examples and problems have been includedto provide the student with hands-on experience with the concepts..978-1-4419-2281-6978-0-387-37880-0
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,Characterization of Materials — I,bject the material to mechanical, thermal, chemical, optical, electrical, and other characterizations to make sure that the material under consideration can function without failure for the life of the final product. We will consider only mechanical, thermal, and surface properties in this chapter,
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Ceramic Implant Materials,, sulfides, and selenides. Oxides such as Al2O3, MgO, SiO2, etc. contain metallic and nonmetallic elements. Ionic salts (NaCl, CsCl, ZnS, etc.) can form polycrystalline aggregates, but soluble salts are not suitable for structural biomaterials. Diamond and carbonaceous structures like graphite and p
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Polymeric Implant Materials, etc. One example is polyethylene, which is made from ethylene (CH2=CH2), where the carbon atoms share electrons with two other hydrogen and carbon atoms: –CH2-(CH2–CH2).–CH2–, in which . indicates the number of repeating units.
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,Structure–Property Relationships of Biological Materials,ing materials from artificial replacements. First, most biological materials are continuously bathed with body fluids. Exceptions are the specialized surface layers of skin, hair, nails, hooves, and the enamel of teeth. Second, most biological materials can be considered as ..
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,Soft Tissue Replacement — I: Sutures, Skin, and Maxillofacial Implants,d and the design of the device or implant. The initial selection of material should be based on sound materials engineering practice. The final judgment on the suitability of a material depends upon observation of the in-vivo clinical performance of the implant. Such observations may require many ye
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