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1

Supinʼerekutoronikusu no kiso to ōyō: Spinelectronics : basic and application. Shīemushī Shuppan, 2010.

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2

Lombardi, Giulia C. Spintronics: Materials, applications, and devices. Nova Science Pub., 2008.

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3

Nasirpouri, Farzad, and Alain Nogaret. Nanomagnetism and spintronics: Fabrication, materials, characterization and applications. World Scientific, 2011.

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4

Rare earth doped III-nitrides for optoelectronic and spintronic applications. Springer, 2010.

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5

O’Donnell, Kevin, and Volkmar Dierolf, eds. Rare Earth Doped III-Nitrides for Optoelectronic and Spintronic Applications. Springer Netherlands, 2010. http://dx.doi.org/10.1007/978-90-481-2877-8.

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6

H, Sakakima, and Inomata K, eds. Giant magneto-resistance devices. Springer, 2002.

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7

Wu, Jiansheng, and Xiang-Long Yu. Application of Low Dimensional Topological Materials in Spintronics. Institute of Physics Publishing, 2020.

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8

Blamire, M. G., and J. W. A. Robinson. Superconducting Spintronics and Devices. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.14.

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This article reviews the current status of superconducting spintronics and devices, with particular emphasis on the critical issues and developments needed for their application to low-power quantum computing. It first provides an overview of conventional spintronics before discussing the rationale for superconducting spintronics. It then considers the proximity effects and Josephson junctions in superconductor-ferromagnet heterostructures, along with spin transport in the superconducting state. It also examines the issue of memory in superconducting spintronics, especially with respect to rea
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9

Heber, J., D. Schlom, Y. Tokura, R. Waser, and M. Wuttig. Frontiers of Electronic Materials: Correlation Effects, Spintronics, and Memristive Phenomena - Fundamentals and Application. Wiley-VCH Verlag GmbH, 2012.

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10

Narlikar, A. V., and Y. Y. Fu, eds. Oxford Handbook of Nanoscience and Technology. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.001.0001.

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This volume highlights engineering and related developments in the field of nanoscience and technology, with a focus on frontal application areas like silicon nanotechnologies, spintronics, quantum dots, carbon nanotubes, and protein-based devices as well as various biomolecular, clinical and medical applications. Topics include: the role of computational sciences in Si nanotechnologies and devices; few-electron quantum-dot spintronics; spintronics with metallic nanowires; Si/SiGe heterostructures in nanoelectronics; nanoionics and its device applications; and molecular electronics based on se
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11

Maekawa, Sadamichi, Sergio O. Valenzuela, Eiji Saitoh, and Takashi Kimura, eds. Spin Current. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.001.0001.

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Since the discovery of the giant magnetoresistance effect in magnetic multilayers in 1988, a new branch of physics and technology, called spin-electronics or spintronics, has emerged, where the flow of electrical charge as well as the flow of electron spin, the so-called “spin current,” are manipulated and controlled together. The physics of magnetism and the application of spin current have progressed in tandem with the nanofabrication technology of magnets and the engineering of interfaces and thin films. This book aims to provide an introduction and guide to the new physics and applications
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12

Takanashi, K., and Y. Sakuraba. Spin polarization in magnets. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.003.0005.

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This chapter explains how the exchange splitting between up- and down-spin bands in ferromagnets unexceptionally generates spin-polarized electronic states at the Fermi energy. The quantity of spin polarization P in ferromagnets is one of the important parameters for application in spintronics, since a ferromagnet having a higher P is able to generate larger various spin-dependent effects such as the magnetoresistance effect, spin transfer torque, spin accumulation, and so on. However, the spin polarizations of general 3d transition metals or alloys generally limit the size of spin-dependent e
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13

Kaidatzis, Andreas, Serhii Sidorenko, Igor Vladymyrskyi, and Dimitrios Niarchos. Modern Magnetic and Spintronic Materials: Properties and Applications. Springer, 2020.

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14

Kaidatzis, Andreas, Serhii Sidorenko, Igor Vladymyrskyi, and Dimitrios Niarchos. Modern Magnetic and Spintronic Materials: Properties and Applications. Springer, 2020.

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15

Kaidatzis, Andreas, Serhii Sidorenko, and Igor Vladymyrskyi. Modern Magnetic and Spintronic Materials: Properties and Applications. Springer, 2020.

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16

Recent Advances in Magnetic Insulators – From Spintronics to Microwave Applications. Elsevier, 2013. http://dx.doi.org/10.1016/c2012-0-03594-6.

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17

Adorno, Dominique Persano, and Sergey Pokutnyi. Advances in Semiconductor Research: Physics of Nanosystems, Spintronics and Technological Applications. Nova Science Publishers, Incorporated, 2014.

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18

Dierolf, Volkmar, and Kevin Peter O'Donnell. Rare-Earth Doped III-Nitrides for Optoelectronic and Spintronic Applications. Springer, 2014.

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19

Hoffmann, Axel, Robert E. Camley, Robert L. Stamps, and Mingzhong Wu. Solid State Physics Vol. 64: Recent Advances in Magnetic Insulators - From Spintronics to Microwave Applications. Elsevier Science & Technology Books, 2013.

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20

Savage, Peter R. Giant Magnetoresistance: Technology and Markets for Sensors, Disk Storage, Mram, and Spintronics (Technical Insights, R-276). John Wiley & Sons Inc, 2000.

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21

J, Borg Herman, ed. Applications of ferromagnetic and optical materials, storage and magnetoelectronics: Symposia held April 16-20, 2001, San Francisco, CA, U.S.A. Materials Research Society, 2001.

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22

Applications of Ferromagnetic and Optical Materials, Storage and Magnetoelectronics: Symposia Held April 16-20, 2001, San Francisco, California, U.S.A ... Society Symposia Proceedings, V. 647.). Materials Research Society, 2001.

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23

Launay, Jean-Pierre, and Michel Verdaguer. Electrons in Molecules. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198814597.001.0001.

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The book treats in a unified way electronic properties of molecules (magnetic, electrical, photophysical), culminating with the mastering of electrons, i.e. molecular electronics and spintronics and molecular machines. Chapter 1 recalls basic concepts. Chapter 2 describes the magnetic properties due to localized electrons. This includes phenomena such as spin cross-over, exchange interaction from dihydrogen to extended molecular magnetic systems, and magnetic anisotropy with single-molecule magnets. Chapter 3 is devoted to the electrical properties due to moving electrons. One considers first
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24

Narlikar, A. V., ed. The Oxford Handbook of Small Superconductors. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.001.0001.

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This handbook examines cutting-edge developments in research and applications of small or mesoscopic superconductors, offering a glimpse of what might emerge as a giga world of nano superconductors. Contributors, who are eminent frontrunners in the field, share their insights on the current status and great promise of small superconductors in the theoretical, experimental, and technological spheres. They discuss the novel and intriguing features and theoretical underpinnings of the phenomenon of mesoscopic superconductivity, the latest fabrication methods and characterization tools, and the op
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25

I, Galanakis, and Dederichs P. H. 1938-, eds. Half-metallic alloys: Fundamentals and applications. Springer, 2005.

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26

(Editor), Iosif Galanakis, and Peter H. Dederichs (Editor), eds. Half-metallic Alloys: Fundamentals and Applications (Lecture Notes in Physics). Springer, 2005.

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