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Magnetic Nanostructured Materials: From Lab to Fab presents a complete overview of the translation of nanostructured materials into realistic applications, drawing on the most rece… Read more
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Immediately download your ebook while waiting for your print delivery. No promo code needed.
Magnetic Nanostructured Materials: From Lab to Fab presents a complete overview of the translation of nanostructured materials into realistic applications, drawing on the most recent research in the field to discuss the fundamentals, synthesis and characterization of nanomagnetics. A wide spectrum of nanomagnetic applications is included, covering industrial, environmental and biomedical fields, and using chemical, physical and biological methods. Materials such as Fe, Co, CoxC, MnGa, GdSi, ferrite nanoparticles and thin films are highlighted, with their potential applications discussed, such as magnetic refrigeration, energy harvesting, magnetic sensors, hyperthermia, MRI, drug delivery, permanent magnets, and data storage devices.
Offering interdisciplinary knowledge on the materials science of nanostructured materials and magnetics, this book will be of interest to researchers in materials science, engineering, physics and chemistry with interest in magnetic nanomaterials, as well as postgraduate students and professionals in industry and government.
Researchers in materials science, engineering, physics, and chemistry with interest in magnetic nanomaterials; postgraduate students; industry and government professionals
1. Magnetic nanoparticles, synthesis, properties and applications
1.1. Introduction
1.2. Chemical synthesis and processing of magnetic nanoparticles
1.3. Physical methods for synthesis of magnetic nanoparticles
1.4. Characterization methods and properties
1.5. magnetic nanoparticles applications
2. Core/Shell Magnetic Nanoparticles for Biomedical Applications
2.1. Fe, Co, Ni, FeRu, CoRu, NiRu, NiPt coated with carbon shells
2.2. Superparamagnetic iron oxide coated with Graphene
2.3. Magnetic Silica Nanotubes
2.4. FeNi, FeCo coated with carbon shells
3. Multifunctional Ferrite Nanoparticles: From Current Trends Towards the Future
3.1. Metal Ferrite Magnetic Nanoparticles: Introduction
3.2. Magnetic Nanoparticles Fabrication Processes
3.3. Characterization Techniques and Analysis of Magnetic Nanoparticles
3.4. Technological Applications
3.5. New Trends and Future Challenges
4. Gd Based Magnetic Nanoparticles for Biomedical Applications
4.1. Methods and Challenges in Synthesis of Rare-Earth Magnetic Nanoparticles
4.2. Magnetic Properties Characterization
4.3. Applications in Medicine
5. Recent developments in permanent magnetic nanostructured materials and their processing methods
5.1. Introduction and Motivation
5.2. Survey of permanent magnetic nanostructured materials
5.3. Synthesis and Processing Methods
5.4. Re2Fe14B based permanent magnetic materials
5.5. Sm-based permanent magnetic materials
5.6. Need of Re-free
5.7. Permanent magnets based on RE-free compounds
6. Nanomagnets for rare earth free permanent magnets
6.1. Cobalt Carbide nanoparticles
6.2. Cobalt Iron Carbide nanoparticles
6.3. MnxGa Nanostructured materials
7. Magnetoelectric coupling in Ferromagnetic Manganite/ferroelectric PZT hetrostructure
7.1. Introduction to Multiferroics and Magnetoelectrics
7.2. Materials and methods
7.3. Structural, elemental and surface analysis
7.4. Electrical, Magnetotransport and Magnetic properties of Ferromagnetic Manganite/ferroelectric PZT hetrostructure
8. Magnetic nanoparticles-Piezoelectric Polymer Nanocomposites for the Enhancement of Energy Density of Energy Harvesting Polymers
8.1. PVDF and copolymers for energy harvesting applications
8.2. Enhancing the piezoelectric coefficient by adding magnetic nanoparticles
8.3. Fabrication of magnetic nanoparticles-piezoelectric polymer nanocomposite films
8.4. Energy harvesting device fabrication
8.5. Challenges and Future Outlook
9. Magnetocaloric effect of Microstructured Materials for Magnetic Refrigeration
9.1. Introduction
9.2. Fundaments on magnetocaloric effect
9.3. Magnetocaloric effect in materials with second-order phase transitions
9.4. Magnetocaloric effect in materials with first-order phase transitions
9.5. Magnetocaloric effect in new alloys
9.6. Applications and challenges
10. Large Magnetocaloric Effect in Microstructured Rare earth Manganese Aluminum Compounds.
10.1. Introduction and Motivation
10.2. Synthesis Methods
10.3. Morphological, structural and magnetic properties
10.4. Magnetocaloric analysis for GdNiAl family
10.5. Applications for magnetic refrigeration
11. Rare-Earth Magnetocaloric Thin Films
11.1. Motivation
11.2. Crystal structure and morphology analysis
11.3. Magnetic and magnetocaloric characterization
12. Magnetically doped topological insulators thin films
12.1. Introduction to topological insulators
12.2. Preparation and characterization of topological thin films
12.3. Chromium and Manganese as a magnetic dopant in topological thin films
13. Structural and Magnetic properties of Ni nanoferrites doped with rare earth and transition metals
13.1. Introduction
13.2. Experimental
13.3. Size dependence of the magnetic properties of NiFe2O4 nanoparticles
13.4. Structural and Magnetic properties of Ni-Sm-Ga-Zn Polycrystalline Ferrites
13.5. Structural and magnetic properties of Ni1-xZnxFe1.49Sm0.01Ga0.5O4 with (0 ≤ x ≤ 0.5) ferrite samples
13.6. Characterization of Ultrasmall Ni-Sm-Ga-Zn nanoparticles
14. Microbial Fabrication of Magnetic Nanoparticles and their Applications
14.1. Introduction and Motivation
14.2. Biosynthesis of magnetic nanoparticles by microbes
14.3. Mechanisms of microbial formation of magnetic nanoparticles
14.4. Large scale production of magnetic nanoparticles
14.5. Magnetic nanoparticles for Antibacterial Agents applications
14.6. Perspectives and directions for future research
15. Summary, Conclusion and Future Outlook
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