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    1. Naturvetenskap och teknik
    2. Matematik och naturvetenskap
    3. Fysik
    4. Elektricitet och magnetism

    Physics of Magnetic Nanostructures

    AvFrank J. Owens

    Inbunden, Engelska, 2015

    1 297 kr

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    Beskrivning

    A comprehensive coverage of the physical properties and real-world applications of magnetic nanostructuresThis book discusses how the important properties of materials such as the cohesive energy, and the electronic and vibrational structures are affected when materials have at least one length in the nanometer range. The author uses relatively simple models of the solid state to explain why these changes in the size and dimension in the nanometer regime occur. The text also reviews the physics of magnetism and experimental methods of measuring magnetic properties necessary to understanding how nanosizing affects magnetism. Various kinds of magnetic structures are presented by the author in order to explain how nanosizing influences their magnetic properties. The book also presents potential and actual applications of nanomaterials in the fields of medicine and computer data storage.Physics of Magnetic Nanostructures: Covers the magnetism in carbon and born nitride nanostructures, bulk nanostructured magnetic materials, nanostructured magnetic semiconductors, and the fabrication of magnetic nanostructuresDiscusses emerging applications of nanomaterials such as targeted delivery of drugs, enhancement of images in MRI, ferrofluids, and magnetic computer data storageIncludes end-of-chapter exercises and five appendicesPhysics of Magnetic Nanostructures is written for senior undergraduate and graduate students in physics and nanotechnology, material scientists, chemists, and physicists.

    Produktinformation

    • Utgivningsdatum:2015-06-22
    • Mått:160 x 244 x 18 mm
    • Vikt:467 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:192
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781118639962

    Utforska kategorier

    • Elektricitet och magnetism inom Naturvetenskap och teknik
    • Teknik: allmänt inom Naturvetenskap och teknik
    • Naturvetenskap:allmänt inom Naturvetenskap och teknik

    Mer om författaren

    Frank J. Owens, PhD., is a research professor in the Department of Physics at Hunter College and member of the graduate faculty at City University of New York. From 1990 until 2008, Dr. Owens was a senior research physicist for the US Army Armament Research Engineering and Development Center (ARDEC). Dr. Owens is the author of more than six books and more than 180 journal publications. He is a Fellow of the American Physical Society.

    Innehållsförteckning

    • Preface ixAcknowledgment xi1 Properties of Nanostructures 11.1 Cohesive Energy 11.2 Electronic Properties 71.3 Quantum Dots 101.4 Vibrational Properties 121.5 Summary 17References 172 The Physics of Magnetism 192.1 Kinds of Magnetism 192.2 Paramagnetism 202.2.1 Theory of Paramagnetism 202.2.2 Methods of Measuring Susceptibility 222.3 Ferromagnetism 252.3.1 Theory of Ferromagnetism 252.3.2 Magnetic Resonance 292.4 Antiferromagnetism 32References 343 Properties of Magnetic Nanoparticles 353.1 Superparamagnetism 353.2 Effect of Particle Size on Magnetization 353.3 Dynamical Behavior of Magnetic Nanoparticles 373.4 Magnetic Field‐Aligned Particles in Frozen Fluids 413.5 Magnetism Induced by Nanosizing 473.6 Antiferromagnetic Nanoparticles 483.7 Magnetoresistive Materials 50References 534 Bulk Nanostructured Magnetic Materials 554.1 Ferromagnetic Solids With Nanosized Grains 554.2 Low‐Dimensional Magnetic Nanostructures 574.2.1 Magnetic Quantum Wells 574.2.2 Magnetic Quantum Wires 614.2.3 Building One‐Dimensional Magnetic Arrays One Atom at a Time 654.3 Magnetoresistance in Bulk Nanostructured Materials 67References 745 Magnetism in Carbon and Boron Nitride Nanostructures 755.1 Carbon Nanostructures 755.1.1 Fullerene, C 60 755.1.2 Carbon and Boron Nitride Nanotubes 785.1.3 Graphene 815.2 Experimental Observations of Magnetism in Carbon and Boron Nitride Nanostructures 815.2.1 Magnetism in C 60 815.2.2 Ferromagnetism in Carbon and Boron Nitride Nanotubes 875.2.3 Magnetism in Graphene 88References 936 Nanostructured Magnetic Semiconductors 956.1 Electron–Hole Junctions 956.2 Mosfet 986.3 Nanosized MOSFETs 996.4 Dilute Magnetic Semiconductors 1006.5 Nanostructuring in Magnetic Semiconductors 1036.6 Dms Quantum Wells 1066.7 DMS Quantum Dots 1066.8 Storage Devices Based on Magnetic Semiconductors 1076.9 Theoretical Predictions of Nanostructured Magnetic Semiconductors 108References 1117 Applications of Magnetic Nanostructures 1137.1 Ferrofluids 1137.2 Magnetic Storage (Hard Drives) 1187.3 Electric Field Control of Magnetism 1217.4 Magnetic Photonic Crystals 1237.5 Magnetic Nanoparticles as Catalysts 1257.6 Magnetic Nanoparticle Labeling of Hazardous Materials 127References 1298 Medical Applications of Magnetic Nanostructures 1318.1 Targeted Drug Delivery 1318.2 Magnetic Hyperthermia 1328.3 Magnetic Separation 1348.4 Magnetic Nanoparticles For Enhanced Contrast in Magnetic Resonance Imaging 1358.5 Detection of Bacteria 1398.6 Analysis of Stored Blood 144References 1469 Fabrication of Magnetic Nanostructures 1479.1 Magnetic Nanoparticles 1479.2 Magnetic Quantum Wells 1499.3 Magnetic Nanowires 1529.4 Magnetic Quantum Dots 153References 154Appendix A A Table of Number of Atoms Versus Size in Face Centered Cubic Nanoparticles 155Appendix B Definition of a Magnetic Field 157Appendix C Density Functional Theory 159Appendix D Tight Binding Model of Electronic Structure of Metals 163Appendix E Periodic Boundary Conditions 165Index 167