505 research outputs found

    Absence of room temperature ferromagnetism in bulk Mn-doped ZnO

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    Structural and magnetic properties have been studied for polycrystalline Zn_1-xMn_xO (x=0.02, 0.03, 0.05). Low-temperature (~500 oC) synthesis leaves unreacted starting ZnO and manganese oxides. Contrary to a recent report, no bulk ferromagnetism was observed for single-phase materials synthesized in air at temperatures above 900 oC. Single-phase samples show paramagnetic Curie-Weiss behavior.Comment: Accepted for publication in J. Appl. Phys., RevTeX, 3 pages, 4 figure

    Absence of ferromagnetism in Co and Mn substituted polycrystalline ZnO

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    We discuss the properties of semiconducting bulk ZnO when substituted with the magnetic transition metal ions Mn and Co, with substituent fraction ranging from xx = 0.02 to xx = 0.15. The magnetic properties were measured as a function of magnetic field and temperature and we find no evidence for magnetic ordering in these systems down to TT = 2 K. The magnetization can be fit by the sum of a Curie-Weiss term with a Weiss temperature of Θ\Theta\gg100 K and a Curie term. We attribute this behavior to contributions from both \textit{t}M ions with \textit{t}M nearest neighbors and from isolated spins. This particular functional form for the susceptibility is used to explain why no ordering is observed in \textit{t}M substituted ZnO samples despite the large values of the Weiss temperature. We also discuss in detail the methods we used to minimize any impurity contributions to the magnetic signal.Comment: 6 pages, 4 figures (revised

    Structural and physical properties of SrMn1xRuxO3SrMn_{1-x}Ru_xO_3 perovskites

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    We combine the results of magnetic and transport measurements with neutron diffraction data to construct the structural and magnetic phase diagram of the entire family of SrMn1x_{1-x}Rux_{x}O3_3 (0x10 \leqslant x \leqslant 1) perovskites. We have found antiferromagnetic ordering of the C type for lightly Ru-substituted materials (0.06x0.50.06 \leqslant x \leqslant 0.5) in a similar manner to RyR_{y}Sr1y_{1-y}MnO3_3 (RR=La, Pr), due to the generation of Mn3+^{3+} in both families of manganite perovskites by either BB-site substitution of Ru5+^{5+} for Mn4+^{4+} or AA-site substitution of R3+R^{3+} for Sr2+^{2+}. This similarity is driven by the same ratio of d4d^4 / d3d^3 ions in both classes of materials for equivalent substitution level. In both cases, a tetragonal lattice distortion is observed, which for some compositions (0.06x0.20.06 \leqslant x \leqslant 0.2) is coupled to a C-type AF transition and results in a first order magnetic and resistive transition. Heavily substituted SrMn1x_{1-x}Rux_{x}O3_3 materials are ferromagnetic due to dominating exchange interactions between the Ru4+^{4+} ions. Intermediate substitution (0.6x0.70.6 \leqslant x \leqslant 0.7) leads to a spin-glass behavior instead of a quantum critical point reported previously in single crystals, due to enhanced disorder.Comment: 9 pages, 10 figures, accepted for publication in Physical Review

    Tuning of magnetic and electronic states by control of oxygen content in lanthanum strontium cobaltites

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    We report on the magnetic, resistive, and structural studies of perovskite La1/3_{1/3}Sr2/3_{2/3}CoO3δ_{3-\delta}. By using the relation of synthesis temperature and oxygen partial pressure to oxygen stoichiometry obtained from thermogravimetric analysis, we have synthesized a series of samples with precisely controlled δ=0.000.49\delta=0.00-0.49. These samples show three structural phases at δ=0.000.15\delta=0.00-0.15, 0.25\approx0.25, 0.5\approx0.5, and two-phase behavior for other oxygen contents. The stoichiometric material with δ=0.00\delta=0.00 is a cubic ferromagnetic metal with the Curie temperature TC=274T_{\rm C}=274 K. The increase of δ\delta to 0.15 is followed by a linear decrease of TCT_{\rm C} to \approx 160 K and a metal-insulator transition near the boundary of the cubic structure range. Further increase of δ\delta results in formation of a tetragonal 2ap×2ap×4ap2a_p\times 2a_p \times 4a_p phase for δ0.25\delta\approx 0.25 and a brownmillerite phase for δ0.5\delta\approx0.5. At low temperatures, these are weak ferromagnetic insulators (canted antiferromagnets) with magnetic transitions at Tm230T_{\rm m}\approx230 and 120 K, respectively. At higher temperatures, the 2ap×2ap×4ap2a_p\times 2a_p \times 4a_p phase is GG-type antiferromagnetic between 230 K and \approx360 K. Low temperature magnetic properties of this system for δ<1/3\delta<1/3 can be described in terms of a mixture of Co3+^{3+} ions in the low-spin state and Co4+^{4+} ions in the intermediate-spin state and a possible spin transition of Co3+^{3+} to the intermediate-spin state above TCT_{\rm C}. For δ>1/3\delta>1/3, there appears to be a combination of Co2+^{2+} and Co3+^{3+} ions, both in the high-spin state with dominating antiferromagnetic interactions.Comment: RevTeX, 9 pages, 7 figures, to be published in Physical Review

    Carrier-induced ferromagnetism in p-Zn1-xMnxTe

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    We present a systematic study of the ferromagnetic transition induced by the holes in nitrogen doped Zn1-xMnxTe epitaxial layers, with particular emphasis on the values of the Curie-Weiss temperature as a function of the carrier and spin concentrations. The data are obtained from thorough analyses of the results of magnetization, magnetoresistance and spin-dependent Hall effect measurements. The experimental findings compare favorably, without adjustable parameters, with the prediction of the Rudermann-Kittel-Kasuya-Yosida (RKKY) model or its continuous-medium limit, that is, the Zener model, provided that the presence of the competing antiferromagnetic spin-spin superexchange interaction is taken into account, and the complex structure of the valence band is properly incorporated into the calculation of the spin susceptibility of the hole liquid. In general terms, the findings demonstrate how the interplay between the ferromagnetic RKKY interaction, carrier localization, and intrinsic antiferromagnetic superexchange affects the ordering temperature and the saturation value of magnetization in magnetically and electrostatically disordered systems.Comment: 14 pages, 10 figure
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