In the past several decades, the research on spin transport and magnetism has led to remarkable scientific and technological breakthroughs, including Albert Fert and Peter Grünberg’s Nobel Prize-winning discovery of giant magnetoresistance (GMR) in magnetic metallic multilayers. Handbook of Spin Transport and Magnetism provides a comprehensive, balanced account of the state of the art in the field known as spin electronics or spintronics. It reveals how key phenomena first discovered in one class of materials, such as spin injection in metals, have been revisited decades later in other materials systems, including silicon, organic semiconductors, carbon nanotubes, graphene, and carefully engineered nanostructures.
The first section of the book offers a historical and personal perspective of the field written by Nobel Prize laureate Albert Fert. The second section addresses physical phenomena, such as GMR, in hybrid structures of ferromagnetic and normal metals. The third section discusses recent developments in spin-dependent tunneling, including magnetic tunnel junctions with ferroelectric barriers. In the fourth section, the contributors look at how to control spin and magnetism in semiconductors. In the fifth section, they examine phenomena typically found in nanostructures made from metals, superconductors, molecular magnets, carbon nanotubes, quantum dots, and graphene. The final section covers novel spin-based applications, including advanced magnetic sensors, nonvolatile magnetoresistive random access memory, and semiconductor spin-lasers.
The techniques and materials of spintronics have rapidly evolved in recent years, leading to vast improvements in hard drive storage and magnetic sensing. With extensive cross-references between chapters, this seminal handbook provides a complete guide to spin transport and magnetism across various classes of materials and structures.
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Evgeny Y. Tsymbal is a Charles Bessey Professor of Physics and the director of the Materials Research Science and Engineering Center at the University of Nebraska–Lincoln (UNL). Dr. Tsymbal is a fellow of the American Physical Society, a fellow of the Institute of Physics (UK), and a recipient of UNL’s Outstanding Research and Creativity Award. His research in computational materials science focuses on the understanding of fundamental properties of advanced ferromagnetic and ferroelectric nanostructures and materials relevant to nanoelectronics and spintronics.
Igor Žutić is an associate professor of physics at the University at Buffalo (State University of New York). Dr. Žutić has been a recipient of the National Science Foundation CAREER Award, the National Research Council/American Society for Engineering Education Postdoctoral Research Award, and the National Research Council Fellowship. His research encompasses spin transport, magnetism, spintronics, and superconductivity.
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Hardcover. Condition: Good. 1st Edition. Large-format hardcover, xv + 774pp + 16 pages of glossy colour plates, NOT ex-library. Shipping weight over 2kg (please note: extra shipping will be required). Interior is clean and bright throughout with unmarked text, free of inscriptions and stamps, firmly bound. Faint grubby marks on page edges externally. Shelfworn boards with rubbing to edges, small indentations; issued without a dust jacket. -- "A comprehensive, balanced account of the state of the art in the field known as spin electronics or spintronics, the book reveals how key phenomena first discovered in one class of materials, such as spin injection in metals, have been revisited decades later in other materials systems, including silicon, organic semiconductors, carbon nanotubes, graphene, and carefully engineered nanostructures. The first section offers a historical and personal perspective of the field written by Nobel Prize laureate Albert Fert. The second section addresses physical phenomena, such as GMR, in hybrid structures of ferromagnetic and normal metals. The third section discusses recent developments in spin-dependent tunneling, including magnetic tunnel junctions with ferroelectric barriers. In the fourth section, the contributors look at how to control spin and magnetism in semiconductors. In the fifth section, they examine phenomena typically found in nanostructures made from metals, superconductors, molecular magnets, carbon nanotubes, quantum dots, and graphene. The final section covers novel spin-based applications, including advanced magnetic sensors, nonvolatile magnetoresistive random access memory, and semiconductor spin-lasers. The techniques and materials of spintronics have rapidly evolved in recent years, leading to vast improvements in hard drive storage and magnetic sensing. With extensive cross-references between chapters, this seminal handbook provides a complete guide to spin transport and magnetism across various classes of materials and structures." -- Contents: I. Introduction 1 Historical Overview: From Electron Transport in Magnetic Materials to Spintronics II. Spin Transport and Magnetism in Magnetic Metallic Multilayers 2 Basics of Nano-Thin Film Magnetism 3 Micromagnetism as a Prototype for Complexity 4/5 Giant Magnetoresistance: Experiment & Theory 6 Spin Injection, Accumulation, and Relaxation in Metals 7 Spin Torque Effects in Magnetic Systems: Experiment 8 Spin Torque Effects in Magnetic Systems: Theory 9 Hot Carrier Spin Transport in Ferromagnetic Metals III. Spin Transport and Magnetism in Magnetic Tunnel Junctions 10/11/12 Tunneling Magnetoresistance: Experiment (Non-MgO & MgO Magnetic Tunnel Junctions) & Theory 13 Spin-Filter Tunneling 14 Spin Torques in Magnetic Tunnel Junctions 15 Multiferroic Tunnel Junctions IV. Spin Transport and Magnetism in Semiconductors 16 Spin Relaxation and Spin Dynamics in Semiconductors 17 Electrical Spin Injection and Transport in Semiconductors 18 Spin-Polarized Ballistic Hot-Electron Injection and Detection in Hybrid Metal-Semiconductor Devices 19 III-V Magnetic Semiconductors 20 Magnetism of Dilute Oxides 21 Tunneling Magnetoresistance and Spin Transfer with (Ga,Mn)As 22 Spin Transport in Organic Semiconductors 23 Spin Transport in Ferromagnet/III-V Semiconductor Heterostructures 24 Spin Polarization by Current 25 Anomalous and Spin-Injection Hall Effects V. Spin Transport and Magnetism at the Nanoscale 26 Spin-Polarized Scanning Tunneling Microscopy 27 Point Contact Andreev Reflection Spectroscopy 28 Ballistic Spin Transport 29 Graphene Spintronics 30 Magnetism and Transport in Diluted Magnetic Semiconductor Quantum Dots 31 Spin Transport in Hybrid Nanostructures 32 Nonlocal Spin Valves in Metallic Nanostructures 33 Molecular Spintronics VI. Applications 34 Magnetoresistive Sensors Based on Magnetic Tunneling Junctions 35 Magnetoresistive Random Access Memory 36 Emerging Spintronics Memories 37 GMR Spin-Valve Biosensors 38 Semiconductor Spin-Lasers 39 Spin Logic Devices; Index. Seller Inventory # 011287
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