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Electron-Phonon Coupling and Structural Phase Transitions on Gold/Molybdenum(112).

机译:金/钼上的电子-声子耦合和结构相变(112)。

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摘要

The electronic structures, many-body interactions and Fermi surface topologies of Au/Mo(112) were investigated in detail and were found to play important roles in the newly discovered order-disorder structural phase transition of the system. First, the high-resolution angle-resolved photoemission spectroscopy was utilized to characterize the electronic band structure of Mo(112) in far greater details than before. This elucidated the existence of several surface-derived states and their dispersion relations in high precisions near the Fermi level, as well as the symmetries of the bulk and surface electronic states, which are in good quantitative agreement with the ab-initio calculations. Such thorough understanding of the electronic states on Mo(112) made it possible to investigate the more complex electronic structure and many-body interactions in the Au overlayers formed on the Mo(112) surface and their interface. Upon the Au adsorption on Mo(112) substrate, the Au overlayer states are seen to hybridize with those of Mo substrate, which resulted in the formation of the several surface resonance bands, exhibiting high electronic localization near the surface and interface of the combined system. Furthermore, the electron-phonon coupling, involving these surface resonance states, is found to cause strong effective mass enhancement of the electrons near the Fermi level, which can contribute significantly to the surface lattice instability. In particular, for the (4x1) Au overlayer on Mo(112), the noticeable temperature-dependent changes in the Fermi surface contours were observed near the room temperature and were seen to act in favor of the stronger nesting condition and phonon-induced lattice distortions. The combination of the identified strong electron-phonon coupling and the critical Fermi surface topology near the room temperature likely relates to the overlayer lattice instability on the Au/Mo(112) system. In accord with the above general expectation, the order-disorder structural phase transitions were identified on Au/Mo(112) above the room temperature, which is characterized by the abrupt changes in the effective surface Debye temperature, indicative of significant softening of phonons on Au/Mo(112) across the transition. The sequence of these studies likely evidences that the strong electron-phonon coupling and the temperature-dependent Fermi surface topology are indispensable in driving the order-disorder transitions on Au/Mo(112).
机译:详细研究了Au / Mo(112)的电子结构,多体相互作用和Fermi表面拓扑,发现它们在新发现的系统有序-无序结构相变中起重要作用。首先,高分辨率角分辨光发射光谱被用于表征Mo(112)的电子能带结构,其特征远比以前更详细。这阐明了几种表面衍生态的存在及其在费米能级附近的高精度分布关系,以及体电子态和表面电子态的对称性,这些均与从头算式计算良好地吻合。对Mo(112)上电子态的这种透彻理解使得研究Mo(112)表面及其界面上形成的Au覆盖层中更复杂的电子结构和多体相互作用成为可能。在Au吸附在Mo(112)衬底上后,发现Au覆盖层状态与Mo衬底发生了杂化,这导致形成了多个表面共振带,在组合系统的表面和界面附近表现出高电子定位。此外,发现涉及这些表面共振状态的电子-声子耦合引起费米能级附近的电子的有效有效质量增强,这可显着促进表面晶格的不稳定性。特别是,对于Mo(112)上的(4x1)Au覆盖层,在室温附近观察到了费米表面轮廓的明显温度依赖性变化,并被认为有利于更强的嵌套条件和声子诱导的晶格扭曲。确定的强电子-声子耦合和室温附近的临界费米表面拓扑的组合可能与Au / Mo(112)系统上的顶层晶格不稳定性有关。与上述一般预期一致,在室温以上的Au / Mo(112)上确定了有序-无序结构相变,其特征在于有效表面德拜温度的突然变化,表明声子在表面上显着软化在过渡过程中出现Au / Mo(112)。这些研究的顺序可能证明强电子-声子耦合和依赖温度的费米表面拓扑是驱动Au / Mo(112)上有序-无序跃迁必不可少的。

著录项

  • 作者

    Fukutani, Keisuke.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Physics Solid State.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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