Buch, Englisch, 699 Seiten, HC runder Rücken kaschiert, Format (B × H): 160 mm x 241 mm, Gewicht: 1350 g
Magnetic Materials
Buch, Englisch, 699 Seiten, HC runder Rücken kaschiert, Format (B × H): 160 mm x 241 mm, Gewicht: 1350 g
Reihe: Indian Institute of Metals Series
ISBN: 978-981-97-4645-3
Verlag: Springer Nature Singapore
This book presents state-of-the-art coverage of the basic concepts of magnetization. The book focuses on electron-spin interaction, electron-spin-magnetic field interactions with or without angular dependent, magnetic properties with the dimension of particles or surrounding environment, proximity effects on core-shell structure or hybrid or composite and their applications. It also discusses recent advances in magnetic materials and its future scope. This book is of interest to students, researchers and professionals working in the area of materials science, especially magnetic materials and allied fields.
Zielgruppe
Research
Autoren/Hrsg.
Fachgebiete
Weitere Infos & Material
Basic Concept of Magnetic Materials and Summary of all the Chapters.- Magnetic Materials: Fundamentals and Applications.- Units, Dimensions and Conversion Factors in Magnetism: Basic Understanding.- Classification of Ferrites, Synthesis and Properties of Spinel Ferrite Nanoparticles and Their Applications.- Applications of Magnetic Materials.- Defects-Induced Multifunctional Properties in BiFeO3.- Basic Concepts of Nitride Magnetic Materials and their Applications.- Fundamental Aspects of Nanomagnetism and its Versatile Applications.- Ferromagnetic Functional Materials.- Origin of Magnetism, Synthesis, Characterization and Perspective Application of Magnetic Graphene.- Externally Driven Interface in Three Dimensional Ising Model: A Monte Carlo study.- Selected Examples of Iron and Cobalt Complexes Exhibiting Spin-Crossover Behavior.- Magnetism in Bulk and Thin Film Metallic Glass Systems.- Recent Developments in Magnetic Nanocrystalline Metal Oxides and their Biomedical Applications.- Ferromagnetism in Two-Dimensional TMD Materials via Doping, Phase Transition and Defect Engineering.