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Electronic structure and binding geometry of tetraphenylporphyrin-derived molecules adsorbed on metal and metal oxide surfaces.

机译:四苯基卟啉衍生分子吸附在金属和金属氧化物表面上的电子结构和结合几何形状。

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摘要

Tetraphenylporphyrin (TPP)-derived molecules have been studied extensively as efficient photosensitizers when chemisorbed on the metal oxide substrates in dye-sensitized solar cells. Still, many fundamental electronic properties of the dye/oxide interface are not understood and need careful consideration. In this thesis we present a comprehensive study of the electronic structure, energy level alignment and the adsorption geometry of the TPP-derived dye molecules adsorbed on TiO2(110), ZnO(1120) and Ag(100) single crystal surfaces using ultra-high vacuum (UHV) based surface sensitive techniques.;The alignment of the molecular energy levels with respect to the TiO 2 and ZnO band edges for all TPP-derived molecules we studied was found to be insensitive to either the nature of the functional groups located on the phenyl rings, presence of zinc as a central metal ion and different binding geometry of the molecules. Binding geometry, molecule-molecule interaction and the aggregation effects in the adsorbed layer, that were observed in the UV-visible spectra of the molecules adsorbed on ZnO substrate were not observed in the ultraviolet photoemission (UPS) and inverse photoemission (IPS) spectra of the occupied and unoccupied molecular states. Using near edge X-ray absorption fine structure (NEXAFS) and scanning tunneling microscopy (STM), binding geometry of the two representative TPP-derivatives was directly determined to be upright, with the porphyrin ring under large angle with respect to the surface for the p-ZnTCPP molecules and with the porphyrin ring parallel to the surface for the m-ZnTCPP molecules.;We observe that the energies and the energy level alignment of the ZnTPP molecular levels measured in UPS and IPS depend on the substrate on which the molecules are adsorbed (Ag(100) or TiO2(110) single crystal surfaces). The differences are attributed to different charge screening properties of these two materials. Image charges created in the substrates during the measurement affect both the ground state electronic structure and the electronic excitations in the molecules causing the transport gap, the optical gap and the exciton binding energy of the molecules to decrease as the thickness of the film decreases. As measured in STM, the molecules in the first layer adsorb with the porphyrin rings parallel to the surface, while the phenyl rings are essentially upright on both surfaces.
机译:当化学吸附在染料敏化太阳能电池中的金属氧化物基质上时,四苯基卟啉(TPP)衍生的分子已作为有效的光敏剂进行了广泛研究。仍然,染料/氧化物界面的许多基本电子性质尚不了解,需要仔细考虑。在本文中,我们对TPP衍生的染料分子以超高吸附在TiO2(110),ZnO(1120)和Ag(100)单晶表面上的电子结构,能级排列和吸附几何结构进行了全面研究。基于真空(UHV)的表面敏感技术。;我们研究的所有TPP衍生分子的分子能级相对于TiO 2和ZnO能带边缘的排列均不敏感,位于分子上的官能团的性质苯环,锌作为中心金属离子的存在以及分子的不同结合几何形状。在ZnO衬底上吸附的分子的紫外-可见光谱中观察到的结合几何,分子-分子相互作用和在吸附层中的聚集效应在紫外发射(UPS)和反向发射(IPS)光谱中没有观察到。占据和未占据的分子态。使用近边缘X射线吸收精细结构(NEXAFS)和扫描隧道显微镜(STM),直接确定两种代表性TPP衍生物的结合几何结构是直立的,其中卟啉环相对于表面成大角度。 p-ZnTCPP分子,且卟啉环与m-ZnTCPP分子的表面平行。;我们观察到在UPS和IPS中测得的ZnTPP分子能级的能量和能级对准取决于分子所在的底物吸附(Ag(100)或TiO2(110)单晶表面)。差异归因于这两种材料的电荷筛选特性不同。在测量期间在基板中产生的图像电荷会影响基态电子结构和分子中的电子激发,从而导致分子的传输间隙,光学间隙和激子结合能随薄膜厚度的减小而减小。如在STM中测量的,第一层中的分子被卟啉环平行于表面吸附,而苯环在两个表面上基本上是直立的。

著录项

  • 作者

    Coh, Senia.;

  • 作者单位

    Rutgers The State University of New Jersey - New Brunswick.;

  • 授予单位 Rutgers The State University of New Jersey - New Brunswick.;
  • 学科 Physics Astronomy and Astrophysics.;Engineering Materials Science.;Physics Molecular.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 221 p.
  • 总页数 221
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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