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Polypyridyl transition metal complexes with application in water oxidation catalysis and dye-sensitised solar cells

机译:多吡啶基过渡金属配合物,用于水氧化催化和染料敏化太阳能电池

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摘要

This thesis contains complementary synthetic and computational studies of transition metal complexes with polypyridyl ligands for use either as water oxidation catalysts or for application in dye-sensitised solar cells (DSSCs). ududChapter 1 introduces the reasons for researching water splitting catalysts and describes a number of current techniques used to do so; from photoelectrochemical cells to the use of transition metal polypyridyl complexes. It also introduces three commercially available types of solar cells; silicon, thin film and the dye-sensitised solar cell. ududChapter 2 describes the synthesis of seven ruthenium(II) complexes with substituted ud4'-(4-pyridyl)-2,2':6',2''-terpyridine ligands and their photophysical and electrochemical properties. Density Functional Theory (DFT) calculations were used to explore the compositions of the highest occupied- and lowest unoccupied molecular orbitals (HOMO and LUMO, respectively) and Time Dependent DFT (TD-DFT) was used to predict the absorption spectra of the complexes.ududChapter 3 contains information on water soluble ruthenium(II) complexes, their synthesis, photophysical and electrochemical properties and their activity as water splitting co-catalysts. A mechanism to explain the variable activities of the complexes is also put forward. ududChapter 4 describes the synthesis of two homoleptic Cu(I) complexes. One complex involves a simple 6,6'-dimethyl-2,2'-bipyridine ligand. The other complex contains a ligand with extended ?-conjugation. The properties of the Cu(I) complexes are studied in terms of their suitability for use in DSSCs. A strategy of ligand-exchange on the surface of titanium dioxide (TiO2) is then utilised to form surface-bound heteroleptic Cu(I) complexes and efficiences of these complexes in DSSCs were measured. udududChapter 5 details the development of a suitable basis set to be used in both DFT and TD-DFT to predict the absorption spectra of the homoleptic Cu(I) complexes in Chapter 4; the accuracies of the predicted spectra are assessed. The properties of the uncharacterised, heteroleptic Cu(I) complexes were then predicted and the effects of the anchoring ligands on the overall properties of the complexes were assessed. ududChapter 6 describes the synthesis of two mono-substituted bipyridine-based ligands and their corresponding homoleptic chiral copper(I) complexes. Variable temperature nuclear magnetic resonance (VT-NMR) experiments are described, along with the photophysical properties of the ligands and complexes. ududChapter 7 consists of the overall conclusions and an outlook.
机译:本论文包含与聚吡啶基配体的过渡金属配合物的补充合成和计算研究,这些配合物可用作水氧化催化剂或用于染料敏化太阳能电池(DSSC)。 ud ud第1章介绍了研究水分解催化剂的原因,并介绍了许多用于水分解催化剂的技术。从光电化学电池到使用过渡金属聚吡啶配合物。它还介绍了三种市售类型的太阳能电池。硅,薄膜和染料敏化太阳能电池。 ud ud第2章介绍了七个具有取代的 ud4'-(4-吡啶基)-2,2':6',2''-吡啶吡啶配体的钌(II)配合物的合成及其光物理和电化学性质。使用密度泛函理论(DFT)计算来探索最高未占用分子轨道和最低未占用分子轨道(分别为HOMO和LUMO)的组成,并使用时变DFT(TD-DFT)来预测复合物的吸收光谱。 ud ud第3章包含有关水溶性钌(II)配合物,其合成,光物理和电化学性质及其作为水分解助催化剂的活性的信息。还提出了解释复合物可变活性的机制。 ud ud第4章介绍了两种同型Cu(I)配合物的合成。一种络合物涉及简单的6,6'-二甲基-2,2'-联吡啶配体。另一络合物包含具有扩展的α-缀合的配体。研究了Cu(I)配合物在DSSC中的适用性。然后,利用二氧化钛(TiO2)表面上的配体交换策略来形成表面结合的杂配Cu(I)配合物,并测量了这些配合物在DSSC中的效率。 ud ud ud第5章详细介绍了在DFT和TD-DFT中使用的适当基础集的发展,以预测第4章中均纯的Cu(I)配合物的吸收光谱。评估预测光谱的准确性。然后预测了未表征的,杂配的Cu(I)配合物的性质,并评估了锚定配体对配合物整体性质的影响。 ud ud第6章介绍了两个基于单取代联吡啶的配体及其相应的均相手性铜(I)配合物的合成。描述了可变温度核磁共振(VT-NMR)实验以及配体和配合物的光物理性质。 ud ud第7章包含总体结论和展望。

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  • 作者

    Rudd Jennifer A.;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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