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Electronic structure of lithium tetraborate.

机译:四硼酸锂的电子结构。

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摘要

Due to many of its attributes, Li2B4O7 provides a possible material for incorporation as either a primary or companion material in future solid state neutron detectors. There is however a lack of fundamental characterization information regarding this useful material, particularly its electronic configuration. To address this, an investigation of Li2B4O7(110) and Li2B 4O7(100) was undertaken, utilizing photoemission and inverse photoemission spectroscopic techniques. The measured band gap depended on crystallographic direction with the band gaps ranging from 8.9+/-0.5 eV to 10.1+/-0.5 eV. The measurement yielded a density of states that qualitatively agreed with the theoretical results from model bulk band structure calculations for Li2B4O7; albeit with a larger band gap than predicted, but consistent with the known deficiencies of Local Density Approximation and Density Functional Theory calculations. The occupied states of both surfaces were extremely flat; to the degree that resolving periodic dispersion of the occupied states was inconclusive, within the resolution of the system. However, both surfaces demonstrated clear periodic dispersion within the empty states very close to theoretical Brillouin zone values. These attributes also translated to a lighter charge carrier effective mass in the unoccupied states. Of the two surfaces, Li2B4O 7(110) yielded the more consistent values in orthogonal directions for energy states. The presence of a bulk band gap surface state and image potential state in Li2B4O7(110) was indicative of a defect-free surface. The absence of both in the more polar, more dielectric Li2B4O7(100) was attributed to the presence of defects determined to be O vacancies. The results from Li2B 4O7(110) were indicative of a more stable surface than Li 2B4O7(100). In addition, Li 1s bulk and surface core level components were determined at the binding energies of -56.5+0.4 and -53.7+0.5 eV. Resonance features were observed along the [001] direction and were attributed to a Coster-Kronig process. Finally, the pyroelectric and piezoelectric character of Li2B4O 7 was explored more deeply and a non-zero, off-axis pyroelectric coefficient for the Li2B4O7 (110) direction was discovered.
机译:由于其许多特性,Li2B4O7提供了一种可能的材料,可以作为主要材料或伴随材料并入未来的固态中子探测器。但是,缺乏有关该有用材料的基本表征信息,尤其是其电子配置。为了解决这个问题,利用光发射和逆光发射光谱技术对Li2B4O7(110)和Li2B 4O7(100)进行了研究。所测量的带隙取决于晶体学方向,带隙范围为8.9 +/- 0.5eV至10.1 +/- 0.5eV。测量产生的态密度与Li2B4O7的模型体能带结构计算中的理论结果定性一致。尽管带隙比预期的要大,但与局部密度近似和密度泛函理论计算的已知缺陷相一致。两个表面的占据状态非常平坦;在系统的分辨率范围内,解决占领状态的周期性分散是不确定的。但是,两个表面在空态内均表现出明显的周期性分散,非常接近理论的布里渊区值。这些属性还转化为在未占用状态下较轻的载流子有效质量。在两个表面中,Li2B4O 7(110)在正交方向上产生了能量状态的更一致的值。 Li2B4O7(110)中存在体带隙表面状态和图像电势状态表示表面无缺陷。极性更强,介电更多的Li2B4O7(100)均不存在,这归因于确定为O空位的缺陷的存在。 Li 2 B 4 O 7(110)的结果表明表面比Li 2B 4 O 7(100)更稳定。此外,Li 1s的体积和表面核心能级成分是在-56.5 + 0.4和-53.7 + 0.5 eV的结合能下确定的。沿[001]方向观察到共振特征,并归因于Coster-Kronig过程。最后,进一步深入地研究了Li2B4O 7的热电和压电特性,并发现了Li2B4O7(110)方向的非零轴外热电系数。

著录项

  • 作者

    Wooten, David J.;

  • 作者单位

    Air Force Institute of Technology.;

  • 授予单位 Air Force Institute of Technology.;
  • 学科 Physics Electricity and Magnetism.;Physics Condensed Matter.;Physics Molecular.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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