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      Crystal and Magnetic Structures in Layered, Transition Metal Dihalides and Trihalides

      Crystals
      MDPI AG

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          Strongly Geometrically Frustrated Magnets

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            Antiferromagnetic spintronics

            Antiferromagnetic materials are internally magnetic, but the direction of their ordered microscopic moments alternates between individual atomic sites. The resulting zero net magnetic moment makes magnetism in antiferromagnets externally invisible. This implies that information stored in antiferromagnetic moments would be invisible to common magnetic probes, insensitive to disturbing magnetic fields, and the antiferromagnetic element would not magnetically affect its neighbours, regardless of how densely the elements are arranged in the device. The intrinsic high frequencies of antiferromagnetic dynamics represent another property that makes antiferromagnets distinct from ferromagnets. Among the outstanding questions is how to manipulate and detect the magnetic state of an antiferromagnet efficiently. In this Review we focus on recent works that have addressed this question. The field of antiferromagnetic spintronics can also be viewed from the general perspectives of spin transport, magnetic textures and dynamics, and materials research. We briefly mention this broader context, together with an outlook of future research and applications of antiferromagnetic spintronics.
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              Novel\({J}_{\mathrm{eff}}=1/2\)Mott State Induced by Relativistic Spin-Orbit Coupling in\({\mathrm{Sr}}_{2}{\mathrm{IrO}}_{4}\)

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                Author and article information

                Journal
                CRYSBC
                Crystals
                Crystals
                MDPI AG
                2073-4352
                May 2017
                April 27 2017
                : 7
                : 5
                : 121
                Article
                10.3390/cryst7050121
                a70e72d1-8967-43be-b21d-715a3f2108b2
                © 2017

                https://creativecommons.org/licenses/by/4.0/

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