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Self assembly and interface chemistry of non-metallated tetraphenyl porphyrin.

机译:非金属化四苯基卟啉的自组装和界面化学。

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摘要

The study of the electronic properties and geometrical arrangement of 5, 10, 15, 20-tetraphenyl-21H, 23H-porphine on metal is presented. The systems were analyzed using both scanning tunneling microscopy and photoelectron spectroscopy and compared across surfaces to determine how the interface chemistry between the metal and molecule affect the self-assembly and band structure of the adsorbed species. Themolecules are found to self-assemble and grow on the Ag(111) surface in a manner described by similar models to weakly bound metal/metal surface systems. The CH-pi bonds between molecules are found to largely determine the relative inter-molecular arrangement, while the more isotropic van der Waals interactions drive the self-assembly. The 2H-TPP however remains isolated and equally dispersed despite any increases in coverage, observed motion, or annealing on the Cu(111) surface, indicating an electrostatic repulsion between adsorbates. Through calculation, spectroscopic observations of state shifts and mapping of the local work function, the limiting factor in the inter-molecular repulsion is found to be due to a combination of charge transfer between molecule and surface and perturbation of the surface electrons due to frontier orbital overlap. By comparing this molecule across surfaces and temperatures, the complex interplay between band structure matching, charge transfer, surface barriers, and self-assembly is described. Controlling the charge transferred to the adsorbed species by the underlying metal, these properties are tailored without changing the atomic constituents or general band structure of the adsorbed species.
机译:介绍了5,10,15,20-四苯基-21H,23H-卟啉在金属上的电子性质和几何排列的研究。使用扫描隧道显微镜和光电子能谱对系统进行了分析,并在整个表面上进行了比较,以确定金属和分子之间的界面化学如何影响吸附物种的自组装和能带结构。发现分子以类似于弱结合金属/金属表面系统的类似模型描述的方式自组装并在Ag(111)表面上生长。发现分子之间的CH-pi键在很大程度上决定了相对的分子间排列,而各向同性的范德华相互作用则驱动自组装。尽管2H-TPP的覆盖率,观察到的运动或在Cu(111)表面上的退火有所增加,但仍保持隔离和均匀分散,表明吸附物之间存在静电排斥。通过计算,状态迁移的光谱观察和局部功函数的映射,发现分子间斥力的限制因素是由于分子和表面之间的电荷转移以及前沿轨道对表面电子的扰动的结合。交叠。通过比较该分子在表面和温度之间的分布,描述了能带结构匹配,电荷转移,表面势垒和自组装之间的复杂相互作用。通过控制底层金属转移到吸附物质上的电荷,可以调整这些特性,而无需改变吸附物质的原子成分或一般能带结构。

著录项

  • 作者

    Rojas, Geoffrey A.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Physics Low Temperature.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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