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Titlebook: Magnetic Nanostructures; Spin Dynamics and Sp Hartmut Zabel,Michael Farle Book 2013 Springer-Verlag Berlin Heidelberg 2013 Heusler alloys.M

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Spin-Polarized Electrons in Superconductor/Ferromagnet Hybrid Structures,and ferromagnetic (F) layers with special emphasis on the occurrence of odd triplet superconductivity. In the theoretical works it has been shown that a long range odd triplet component (LRTC) of the superconducting condensate function can appear at S/F interfaces, if the magnetization of F is inhom
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Multiferroic and Magnetoelectric Materials, the linear . effect has been shown to control spintronic devices very efficiently, e.g. by using the classic . antiferromagnet Cr.O .. An electric field can switch its ferromagnetic surface magnetization and thus control exchange bias based spin valve devices. Similar nano-engineering concepts exis
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Competing Interactions in Patterned and Self-Assembled Magnetic Nanostructures,ures each containing a macrospin or a magnetic dipole interacting with its neighbors. We start with a general overview on rectangular and circular islands, their domain structures and interactions. In the second part we discuss the competing interactions and geometric frustration of magnetic dipoles
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Quantum Dot Spintronics: Fundamentals and Applications,e of freedom . which has been neglected since the roots of electronics. In this sense, spintronics is opening a new dimension of functional devices which is even more mighty than it may look at a first glance: The electron spin and its orientation is a pure quantum mechanical phenomenon which leads
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Multiferroic and Magnetoelectric Materials,rd high—in PZT/ FeBSiC, just right for sensorics applications. In ., whose ferroelectricity is due to modulated magnetic ordering, the . coupling is of fundamental interest. Higher order . response characterizes disordered . and extends the conventional multiferroic scenario toward .. (e.g. Sr.Mn.TiO.) or . (e.g. PbFe.Nb.O.).
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The Influence of Magnetic Anisotropy on Current-Induced Spindynamics, the relative orientation of magnetization and current polarization are discussed. We focus on the nanopillar geometry and address the influence of magnetic anisotropy on the spin-torque driven spindynamics. Selected experimental examples are given to illustrate the interplay between magnetic anisotropy and spin-transfer torque.
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