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Photoelectron Spectroscopy and Computational Studies of Molecules with Delocalized Electronic Structure and Extended Electronic Structure Interactions

机译:具有离域电子结构和扩展电子结构相互作用的分子的光电子能谱和计算研究

摘要

The localized model of a chemical bond has had a long and prominent role in chemistry, but situations of extended charge delocalization and dipole effects remain topics in need of greater understanding. Both orbital delocalization in isolated molecules and induced molecular dipoles in condensed phases serve to move electron density and influence the chemical and physical properties of a system. This dissertation studies these aspects of electronic structure for selected organic, inorganic, and organometallic systems by means of electronic structure calculations and photoelectron spectroscopy, which is well-suited for studying both intramolecular and intermolecular effects by providing a direct probe of orbital energies and characters. Photoelectron spectra of P₄ and AsP₃ reveal differences in the molecular symmetry and cationic state effects between the two molecules in Chapter 3. Despite these differences, AsP₃ is found to have electron delocalization and vibrational structures that are comparable to P₄. A similar study of the delocalized -system of 2H-1,2,3-triazole in Chapter 4 relates the vibrational structure in photoelectron spectroscopy data to a series of Rydberg excitations in the vacuum UV photoabsorption spectrum. Chapters 5 and 6 examine extended electronic structures in organometallic complexes. The electron delocalization and charge transfer between two Ru centers along a bridging ethynediyl ligand is studied in [CpRu(CO)₂]₂(μC≡C). Details of the Ru-alkynyl interaction were explored by comparing the spectra of CpRu(CO)₂C≡CMe with CpRu(CO)₂Cl, including the -backbonding ability of alkynyl ligands. Chapter 6 moves from the realm of intramolecular effects to intermolecular interactions to understand how surrounding media affect electronic properties of molecules. The reversal of ionization energies between the gas and solid phases of M(CO)₄dmpe and M(CO)₄dppe, where M = Mo, W, is explored with photoelectron spectroscopy. The surrounding molecular environment stabilizes the cation, resulting in this reversal that extends to core ionization energies. The variety of systems presented illustrates the wide applicability of photoelectron spectroscopy and computations to different electronic structure studies, including how gas phase results can be related to condensed phase studies. This work continues the progress of photoelectron spectroscopy from small molecules to larger molecular systems and even further to bulk systems.
机译:化学键的局部化模型在化学中起着长期而突出的作用,但是电荷扩展离域和偶极效应的情况仍然是需要进一步了解的话题。分离分子中的轨道离域和凝聚相中的诱导分子偶极子都可用来移动电子密度并影响系统的化学和物理性质。本文通过电子结构计算和光电子能谱研究了选定有机,无机和有机金属体系电子结构的这些方面,通过提供对轨道能量和特性的直接探测,非常适合研究分子内和分子间效应。 P₄和AsP₃的光电子能谱揭示了第3章中两个分子之间的分子对称性和阳离子状态效应的差异。尽管有这些差异,但发现AsP₃具有与P₄相当的电子离域和振动结构。在第4章中对2H-1,2,3-三唑的离域系统的类似研究将光电子能谱数据中的振动结构与真空UV光吸收光谱中的一系列Rydberg激发相关。第5章和第6章研究了有机金属配合物中的扩展电子结构。在[CpRu(CO)2] 2(μC≡C)中研究了两个Ru中心之间沿着桥接乙炔基配体的电子离域和电荷转移。通过比较CpRu(CO)2C≡CMe与CpRu(CO)2 Cl的光谱,包括炔基配体的反向键合能力,探索了Ru-炔基相互作用的细节。第6章从分子内作用的领域转移到分子间的相互作用,以了解周围介质如何影响分子的电子性质。用光电子能谱研究了M(CO)₄dmpe和M(CO)₄dppe的气相和固相之间的电离能的反转,其中M = Mo,W。周围的分子环境使阳离子稳定,从而导致这种反转延伸到核心电离能。所呈现的各种系统说明了光电子能谱和计算在不同电子结构研究中的广泛适用性,包括气相结果如何与凝聚相研究相关。这项工作继续了光电子光谱学从小分子到大分子系统乃至整个本体系统的发展。

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    Head Ashley Lauren Rose;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en
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