株式会社極東書店トップ商品一覧Hydroxyapatite-Based Nanocomposites: Structure, Mechanics and New Methods.

商品詳細

Hydroxyapatite-Based Nanocomposites: Structure, Mechanics and New Methods.

Hydroxyapatite-Based Nanocomposites: Structure, Mechanics and New Methods.

・ISBN 978-3-032-12582-8 hard EUR 119.99

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お気に入り
著者・編者Rabiei, Marzieh / Palevicius, Arvydas / Nasiri, Sohrab / Janusas, Giedrius,
シリーズ (Springer Series in Chemical Physics)
出版社 (Springer Nature Switzerland AG, SZ)
出版年月2026
ページ数153 pp.
言語ENG
ニュース番号<A05-4554>

解説

This book presents an innovative approach to the synthesis and mechanical characterization of hydroxyapatite (HA)-based nanocomposites for biotechnological applications. By integrating advanced X-ray diffraction (XRD) techniques with ultrasonic pulse-echo testing, it provides a high-precision method for determining nanocrystal size, stress-strain behavior, and elastic modulus. The book investigates the effects of doping HA with silver and copper iodide, enhancing structural integrity and bioactivity, and offering new perspectives for optimizing HA-based materials in biomedical applications.

The book explores the investigation of nanocrystal size of natural HA using X-ray diffraction, as well as the evaluation of an innovative technique for measuring the modulus of elasticity related to the atomic density of planes in unit cell and super cells of crystal lattices. It also examines the relationship between Young's modulus and planar density in unit cells, super cells (2x2x2), and symmetry cells of cubic crystal lattices. Furthermore, the book explores the effect of calcination temperature on the mechanical and photophysical properties of CuI-doped HA, providing a deeper understanding of material stability under varying conditions.

By linking fundamental materials science with applied biomedical engineering, this book establishes a robust framework for the development of next-generation biomaterials. The combination of innovative synthesis techniques and advanced mechanical characterization offers practical insights to improve the longevity and performance of HA-based implants and scaffolds.

This book will be a valuable resource for researchers, engineers, and professionals in materials science, nanotechnology, and biomedical engineering. It will particularly benefit those working with bioactive materials, implant development, and mechanical characterization, as it provides cutting-edge methods for optimizing HA composites for clinical use.

With its systematic presentation of theory, experimental methods, and practical case studies, this book is well suited as a textbook for advanced graduate and PhD courses in materials science, microsystems engineering, nanotechnology, and biomaterials engineering.