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The electronic band structure of cobalt disulfide(100).

机译:二硫化钴(100)的电子能带结构。

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摘要

The pyrite-type transition metal compound CoS2 is an itinerant electron ferromagnet and is predicted, in ground state band structure calculations to be close to half-metallic. The Curie temperature is about 120 K. Although some minority spin states are present at the Fermi level in bulk band structure, the system is predicted to be relatively highly spin polarized. The measured saturation magnetization is less than 1.0 microB/Co expected of ideal half-metallic CoS2, which is consistent with these calculations. The measured transport spin polarizations are 56 - 64 %, as determined from point-contact Andreev reflection.;An accurate determination of the surface structure is essential for understanding electron spectroscopy studies, as well as providing a starting point for modeling the interface properties, essential for modeling any spintronics device applications. The success of this work was made possible by the cleavage of sufficiently large CoS2 (100) single crystals. LEED I(V) analysis, was used to determine surface structure. 1S-terminated model is favored, in which, the atoms in sublayer S and Co relax outward (toward the vacuum) and inward (toward the bulk), along the surface normal by approximately 0.03 and 0.11 A, respectively. This kind of surface relaxation of best-fit model is also confirmed by surface stability studies.;Photon energy dependent and angle dependent photoemission spectra were taken in order to map out the bulk band structure (k⊥) along surface normal and surface band structure (k//) respectively. The agreement between experimental and theory calculation suggests that the CoS 2 bulk band structure near the Fermi level is sensitive to the S-S separation, and the half-metallic gap may be controlled by antibonding sulfur p states, rather than exchange splitting of Co d states.;The calculated surface band structure for the (100) surface includes the corrections for the known surface relaxation. The comparison with the experimental k// indicates that the photoemission spectra are indeed dominated by surface weighted bands. The surface state and surface resonance band dispersions in theoretical and experimental band mappings are in general agreement. The spin polarized band structure calculations indicate a true surface state in the minority spin band structure.
机译:黄铁矿型过渡金属化合物CoS2是一种流动电子铁磁体,据预测,在基态能带结构计算中接近半金属。居里温度约为120K。尽管在体能带结构中,在费米能级存在一些少数自旋态,但预计该系统的自旋极化相对较高。测得的饱和磁化强度小于理想半金属CoS2的1.0 microB / Co,与这些计算结果一致。根据点接触安德烈耶夫反射测定,测得的传输自旋极化为56-64%。准确确定表面结构对于理解电子光谱研究至关重要,同时也为建模界面特性提供了起点用于对任何自旋电子设备应用进行建模。裂解足够大的CoS2(100)单晶使这项工作的成功成为可能。 LEED I(V)分析用于确定表面结构。首选1S终止模型,其中子层S和Co中的原子沿着表面法线分别向外(朝向真空)和向内(朝向主体)弛豫大约0.03和0.11A。表面稳定性研究也证实了这种最佳拟合模型的表面弛豫。;采用光子能量依赖性和角度依赖性光发射光谱,以绘制沿表面法线和表面带结构的体能带结构(k⊥)。 k //)。实验和理论计算之间的一致性表明,费米能级附近的CoS 2体带结构对SS分离敏感,并且半金属间隙可能由反键硫p状态控制,而不是由Co d状态交换分裂控制。 ;(100)表面的计算表面带结构包括对已知表面弛豫的校正。与实验k //的比较表明,光发射光谱的确由表面加权带支配。在理论和实验谱图中的表面状态和表面共振谱带的色散基本一致。自旋极化带结构的计算表明少数自旋带结构中的真实表面状态。

著录项

  • 作者

    Wu, Ning.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Physics Electricity and Magnetism.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 电磁学、电动力学;
  • 关键词

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