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PEEK Biomaterials Handbook [Hardback]

Edited by (Director, Implant Research Center and Associate Professor, Drexel University; Research Assistant Professor, Thomas Jefferson University, Philadelphia, PA, USA)
  • Formāts: Hardback, 306 pages, height x width: 276x216 mm, weight: 1130 g
  • Sērija : Plastics Design Library
  • Izdošanas datums: 24-Nov-2011
  • Izdevniecība: William Andrew Publishing
  • ISBN-10: 143774463X
  • ISBN-13: 9781437744637
  • Hardback
  • Cena: 191,26 €
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  • Formāts: Hardback, 306 pages, height x width: 276x216 mm, weight: 1130 g
  • Sērija : Plastics Design Library
  • Izdošanas datums: 24-Nov-2011
  • Izdevniecība: William Andrew Publishing
  • ISBN-10: 143774463X
  • ISBN-13: 9781437744637

PEEK biomaterials are currently used in thousands of spinal fusion patients around the world every year. Durability, biocompatibility and excellent resistance to aggressive sterilization procedures make PEEK a polymer of choice replacing metal in orthopedic implants, from spinal implants and hip replacements to finger joints and dental implants.

This Handbook brings together experts in many different facets related to PEEK clinical performance as well as in the areas of materials science, tribology, and biology to provide a complete reference for specialists in the field of plastics, biomaterials, medical device design and surgical applications.

Steven Kurtz, author of the well respected UHMWPE Biomaterials Handbook and Director of the Implant Research Center at Drexel University, has developed a one-stop reference covering the processing and blending of PEEK, its properties and biotribology, and the expanding range of medical implants using PEEK: spinal implants, hip and knee replacement, etc.



Full coverage of the properties and applications of PEEK, the leading polymer for spinal
implants.
PEEK is being used in a wider range of new applications in biomedical engineering, such
as hip and knee replacements, and finger joints. These new application areas are explored
in detail.
Essential reference for plastics enginers, biomedical engineers and orthopedic
professionals involved in the use of the PEEK polymer, and medical implants made from
PEEK.

PEEK biomaterials are currently used in thousands of spinal fusion patients around the world every year. Durability, biocompatibility and excellent resistance to aggressive sterilization procedures make PEEK a polymer of choice, replacing metal in orthopedic implants, from spinal implants and hip replacements to finger joints and dental implants.

This Handbook brings together experts in many different facets related to PEEK clinical performance as well as in the areas of materials science, tribology, and biology to provide a complete reference for specialists in the field of plastics, biomaterials, medical device design and surgical applications.

Steven Kurtz, author of the well respected UHMWPE Biomaterials Handbook and Director of the Implant Research Center at Drexel University, has developed a one-stop reference covering the processing and blending of PEEK, its properties and biotribology, and the expanding range of medical implants using PEEK: spinal implants, hip and knee replacement, etc.

Covering materials science, tribology and applications, Kurtz provides a complete reference for specialists in the field of plastics, biomaterials, biomedical engineering and medical device design and surgical applications.

Papildus informācija

Covering materials science, tribology and applications, Kurtz provides a complete reference for specialists in the field of plastics, biomaterials, biomedical engineering and medical device design and surgical applications
Foreword vii
List of Contributors
ix
1 An Overview of PEEK Biomaterials
1(8)
Steven M. Kurtz
2 Synthesis and Processing of PEEK for Surgical Implants
9(14)
Steven M. Kurtz
3 Compounds and Composite Materials
23(26)
Stuart Green
4 Morphology and Crystalline Architecture of Polyaryletherketones
49(12)
Maureen Reitman
David Jaekel
Ryan Siskey
Steven M. Kurtz
5 Fracture, Fatigue, and Notch Behavior of PEEK
61(14)
Michael C. Sobieraj
Clare M. Rimnac
6 Chemical and Radiation Stability of PEEK
75(6)
Steven M. Kurtz
7 Biocompatibility of Polyaryletheretherketone Polymers
81(12)
Jeffrey M. Toth
8 Bacterial Interactions with Polyaryletheretherketone
93(26)
Edward T.J. Rochford
David J. Jaekel
Noreen J. Hickok
R. Geoff Richards
T. Fintan Moriarty
Alexandra H.C. Poulsson
9 Thermal Plasma Spray Deposition of Titanium and Hydroxyapatite on Polyaryletheretherketone Implants
119(26)
Pierfrancesco Robotti
Gianluca Zappini
10 Surface Modification Techniques of Polyaryletheretherketone, Including Plasma Surface Treatment
145(18)
Alexandra H.C. Poulsson
R. Geoff Richards
11 Bioactive Polyaryletheretherketone Composites
163(18)
Ryan K. Roeder
Timothy L. Conrad
12 Porosity in Polyaryletheretherketone
181(20)
Marcus Jarman-Smith
Mark Brady
Steven M. Kurtz
Nicholas M. Cordaro
William R. Walsh
13 Applications of Polyaryletheretherketone in Spinal Implants: Fusion and Motion Preservation
201(20)
Steven M. Kurtz
14 Isoelastic Polyaryletheretherketone Implants for Total Joint Replacement
221(22)
Steven M. Kurtz
Judd Day
Kevin Ong
15 Applications of Polyetheretherketone in Trauma, Arthroscopy, and Cranial Defect Repair
243(18)
Scott Lovald
Steven M. Kurtz
16 Arthroplasty Bearing Surfaces
261(16)
Steven M. Kurtz
Jim Nevelos
17 FDA Regulation of Polyaryletheretherketone Implants
277(16)
Jove Graham
Jonathan Peck
Index 293
Dr. Kurtz has been researching ultra-high molecular weight polyehtylene(UHMWPE) for use in orthopedics for over 10 years. He has published dozens of papers and several book chapters related to UHMWPE used in joint replacement. He has pioneered the development of new test methods for the material in orthopedics. Dr. Kurtz has authored national and international standards for medical upgrade UHMWPE.As a principle engineer at Exponent, an international engineering and scientific consulting company, his research on UHMWPE is supported by several major orthopedic manufacturers. He has funding from the National Institutes for Health to stdy UHMWPE changes after implanatation in the body, as well as to develop new computer-based tools to predict the performance of new UHMWPE materials.Dr. Kurtz is the Director of an orthopedic implant retrieval program in Philadelphia which is affiliated with Drexel University and Thomas Jefferson University. He teaches classes on the performance of orthopedic polymers (including UHMWPE) at Drexel, Temple, and Princeton Universities.