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      Magnetic structure determination of Ca\(_3\)LiOsO\(_6\) using neutron and x-ray scattering

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          Abstract

          We present a neutron and x-ray scattering investigation of Ca\(_3\)LiOsO\(_6\), a material predicted to host magnetic ordering solely through an extended superexchange pathway involving two anions, an interaction mechanism that has undergone relatively little investigation. This contrasts with the ubiquitous superexchange interaction mechanism involving a single anion that has well defined and long standing rules. Despite the apparent 1D nature and triangular units of magnetic osmium ions the onset of magnetic correlations has been observed at a high temperature of 117 K in bulk measurements. We experimentally determine the magnetically ordered structure and show it to be long range and three dimensional. Our results support the model of extended superexchange interaction.

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          Electronic Structure of Pyrochlore Iridates: From Topological Dirac Metal to Mott Insulator

          In 5d transition metal oxides such as the iridates, novel properties arise from the interplay of electron correlations and spin-orbit interactions. We investigate the electronic structure of the pyrochlore iridates, (such as Y\(_{2}\)Ir\(_{2}\)O\(_{7}\)) using density functional theory, LDA+U method, and effective low energy models. A remarkably rich phase diagram emerges on tuning the correlation strength U. The Ir magnetic moment are always found to be non-collinearly ordered. However, the ground state changes from a magnetic metal at weak U, to a Mott insulator at large U. Most interestingly, the intermediate U regime is found to be a Dirac semi-metal, with vanishing density of states at the Fermi energy. It also exhibits topological properties - manifested by special surface states in the form of Fermi arcs, that connect the bulk Dirac points. This Dirac phase, a three dimensional analog of graphene, is proposed as the ground state of Y\(_{2}\)Ir\(_{2}\)O\(_{7}\) and related compounds. A narrow window of magnetic `axion' insulator, with axion parameter \(\theta=\pi\), may also be present at intermediate U. An applied magnetic field induces ferromagnetic order and a metallic ground state.
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            Long range magnetic ordering in Na\(_2\)IrO\(_3\)

            We report a combined experimental and theoretical investigation of the magnetic structure of the honeycomb lattice magnet Na\(_2\)IrO\(_3\), a strong candidate for a realization of a gapless spin-liquid. Using resonant x-ray magnetic scattering at the Ir L\(_3\)-edge, we find 3D long range antiferromagnetic order below T\(_N\)=13.3 K. From the azimuthal dependence of the magnetic Bragg peak, the ordered moment is determined to be predominantly along the {\it a}-axis. Combining the experimental data with first principles calculations, we propose that the most likely spin structure is a novel "zig-zag" structure.
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              High Temperature Magnetic Ordering in the\(4d\)Perovskite\({\mathrm{SrTcO}}_{3}\)

              We present evidence for possibly the highest magnetic ordering temperature in any compound without 3d transition elements. Neutron powder diffraction measurements, at both time-of-flight and constant wavelength sources, were performed on two independently prepared SrTcO3 powders. SrTcO3 adopts a distorted perovskite structure with G-type antiferromagnetic ordering and has a moment of 1.87(4)μB per Tc cation at room temperature with an extraordinarily high Néel point close to 750 °C. Electronic structure calculations reveal extensive mixing between the technetium 4d states and oxygen states proximal to the Fermi level. This hybridization leads to a close relationship between magnetic ordering temperature and moment formation in SrTcO3.
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                Author and article information

                Journal
                07 June 2012
                Article
                10.1103/PhysRevB.86.054403
                1206.1608
                774c1ecf-9c17-498c-9d7e-33fbdfcf7540

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                Phys. Rev. B 86, 054403 (2012)
                cond-mat.str-el cond-mat.mtrl-sci cond-mat.other

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