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首页> 外文期刊>Physical Review. B, Condensed Matter >Magnetic states at the surface of α-Fe_2O_3 thin films doped with Ti, Zn, or Sn
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Magnetic states at the surface of α-Fe_2O_3 thin films doped with Ti, Zn, or Sn

机译:α-Fe_2O_3表面的磁性状态掺杂有Ti,Zn或Sn的薄膜

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摘要

The spin states at the surface of epitaxial thin films of hematite, both undoped and doped with 1% Ti, Sn, or Zn, respectively, were probed with x-ray magnetic linear dichroism (XMLD) spectroscopy. Morin transitions were observed for the undoped (T_M ≈ 200 K) and Sn-doped (T_M ≈ 300 K) cases, while Zn- and Ti-doped samples were always in the high- and low-temperature phases, respectively. In contrast to what has been reported for bulk hematite doped with the tetravalent ions Sn~(4+) and Ti~(4+), for which T_M dramatically decreases, these dopants substantially increase T_M in thin films, far exceeding the bulk values. The normalized Fe L_(Ⅱ) -edge dichroism for T <T_M does not strongly depend on doping or temperature, except for an apparent increase of the peak amplitudes for T <100 K.We observed magnetic field-induced inversions of the dichroism peaks. By applying a magnetic field of 6.5 T on the Ti-doped sample, a transition into the T >T_M state was achieved. The temperature dependence of the critical field for the Sn-doped sample was characterized in detail. It was demonstrated the sample-to-sample variations of the Fe L_(Ⅲ) -edge spectra were, for the most part, determined solely by the spin orientation state. Calculations of the polarization-dependent spectra based on a spin-multiplet model were in reasonable agreement with the experiment and showed a mixed excitation character of the peak structures.
机译:用X射线磁性线性二色(XMLD)光谱分别探测外延薄膜的外延薄膜的外延薄膜表面的旋转状态,均分别探测为1%Ti,Sn或Zn。对于未掺杂的(T_M≈100k)和Sn-掺杂(T_m≈00k)病例,观察MORIN转变,而Zn-和Ti掺杂的样品分别始终处于高温和低温阶段。与据报道,掺杂有四价离子Sn〜(4 +)和Ti〜(4+)的批量赤铁矿,其T_M显着降低,这些掺杂剂在​​薄膜中基本上增加了T_M,远远超过散装值。用于T T_M状态的过渡。详细表征了Sn掺杂样品的临界场的温度依赖性。据证明了Fe L_(Ⅲ)-Edge光谱的样品 - 样品变化,最大限度地由旋转定向状态确定。基于旋转多力模型的偏振依赖性光谱的计算与实验合理一致,并显示了峰结构的混合激发特征。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第10期|094426.1-094426.7|共7页
  • 作者单位

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Helmholtz-Zentrum Berlin fr Materialen und Energie Albert-Einstein-Strasse 15 D-12489 Berlin Germany;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Department of Inorganic Chemistry and Catalysis Debye Institute Utrecht University Sorbonnelaan 16 NL-3584 CA Utrecht The Netherlands;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

    Department of Materials Science and Engineering Technion-Israel Institute of Technology Haifa 32000 Israel;

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