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Quantum Chain Reactions and delta-Hydrogen Abstraction of Aromatic Ketones: Insights into Solid to Solid Transformations and Efficiency in Crystals.

机译:芳族酮的量子链反应和δ-氢抽象:对固体到固体的转变和晶体效率的见解。

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摘要

Solid state photoreactions of ketones have long been of equal fascination and frustration for researchers. In the 19th century, Trommsdorff reported on his observations of the yellowing and cracking of crystals of alpha-santonin when they were exposed to ambient sunlight. While this reaction took place with great visual effect, it was not until many years later that the cause of the bursting of the crystals was more fully elucidated. Solid-state photochemistry has generally been plagued with issues stemming from an inability to rationally design photoreactions as, until recently, few analytical methods were available for analysis of reactions in the solid state that are analogous to those commonly used to analyze solution phase experiments. As a result, solid state photochemistry has historically been heavily reliant on product analysis for investigations into mechanisms. This usually involves dissolving the crystal in solution. While this is adequate for solution phase experiments, reaction outcomes in crystals are impacted by the crystalline environment in which the reaction occurs, and dissolving the crystal effectively erases any de novo crystallographic information inherent to the reaction. Research in the Garcia-Garibay group has found a way to circumvent many of these issues via the utilization of nanocrystalline suspensions for solid state photoreaction studies, an advance which has already expanded our insight into the mechanisms of organic reactions in crystals. Analysis of solid state photochemistry via nanocrystalline suspensions offers the opportunity to gain more detailed knowledge into reaction mechanisms by providing a method to conduct spectroscopic and actinometric analysis into solid state reactions without losing any of the structural information contained in the crystal lattice.;Chapter 2 of this thesis will discuss a solid state photochemical study originally reported by Wagner and co-workers in 1989. In their original study, the Norrish-Yang-like photochemical cyclization of alpha-o-tolyl and alpha-mesityl acetophenones to the corresponding 2-indanols was explored in both solution phase and the bulk solid, though a lack of methodology for spectroscopic and kinetic analysis at the time made it difficult to gain understanding of the mechanisms at work in the solid state reaction. Utilizing our methodology of photolysis of nanocrystalline suspensions, we were able to analyze the efficiency of the cyclization reaction in the solid state, and discovered a unique trend that correlated with the steric bulk of alpha-o-tolyl acetophenones, but showed the inverse trend in alpha-mesityl acetophenones under identical conditions.;Chapters 3 and 4 will discuss a quantum chain reaction known to take place in the conversion of diarylcyclopropenones to diarylacetylenes, stemming from work that was previously published in our group. In Chapter 3, in work done in collaboration with Dr. Gregory Kuzmanich, the photochemical decarbonylation of alkyl-tethered diphenylcyclopropenone dimers to form tethered diphenylacetylenes will be discussed. Both solution and solid state photolysis are explored, and evidence is shown for a Dexter mediated energy transfer mechanism. In Chapter 4, as an extension to this preliminary study, the reactions of aryl-tethered diphenylcyclcopropenones have also been examined, with respect to applications in materials chemistry; in this system we demonstrate evidence of a through bond energy transfer mechanism.;In Chapter 5, in work done in collaboration with Dr. Antoine Stopin, the reactions of biarylcyclopropenones with substituents of varying steric bulk are described, in an effort to better understand and test the limitations of the topochemical postulate in solid state photochemistry, which indicates that reaction in crystals may only occur with a minimum amount of molecular movement without rupturing the crystal lattice. In two cases shown here, evidence is shown for the occurrence of solid-to-solid reconstructive phase transformations taking place, despite steric bulk. This indicates that, even though there are structural limits to the strength of the crystal lattice, reactions can take place in a solid-to-solid manner in some substrates that can be activated to have a high potential energy.
机译:长期以来,酮的固态光反应对研究人员来说同样令人着迷和沮丧。在19世纪,Trommsdorff报告了他观察到的α-桑顿宁晶体在暴露于环境阳光下时会泛黄和破裂的现象。尽管该反应具有很强的视觉效果,但直到很多年后才更充分地阐明了晶体破裂的原因。固态光化学通常受到无法合理设计光反应的困扰,因为直到最近,很少有类似于固态溶液化学实验的分析方法可用于固态反应的分析。结果,固态光化学历来在很大程度上依赖于产物分析来研究机理。这通常涉及将晶体溶解在溶液中。尽管这对于溶液相实验是足够的,但晶体中的反应结果会受到发生反应的晶体环境的影响,溶解晶体会有效消除该反应固有的从头结晶信息。 Garcia-Garibay小组的研究找到了一种方法,可以通过利用纳米晶体悬浮液进行固态光反应研究来规避许多这些问题,这一进展已经使我们深入了解了晶体中有机反应的机理。通过纳米晶悬浮液对固态光化学进行分析,提供了机会,可以通过提供一种对固态反应进行光谱和光化分析的方法,而又不丢失晶格中包含的任何结构信息,从而获得对反应机理的更详细的了解。;第二章本论文将讨论Wagner及其同事最初于1989年报道的固态光化学研究。在他们的原始研究中,将Nor-ish-Yang样的α-邻甲苯基和α-间苯二酚苯乙酮类光化学环化为相应的2-茚满醇尽管当时缺乏用于光谱和动力学分析的方法,但仍难以了解固态反应中的作用机理,因此在固溶体和固相两方面都进行了研究。利用我们的纳米晶悬浮液的光解方法,我们能够分析固态环化反应的效率,并发现了一种独特的趋势,该趋势与α-o-甲苯基苯乙酮的空间体积相关,但显示出相反的趋势。在相同条件下的α-间苯二甲酰苯乙酮。第3章和第4章将讨论量子链反应,该反应发生在二芳基环丙烯酮转化为二芳基乙炔的过程中,该反应源于我们小组先前发表的工作。在第3章中,与Gregory Kuzmanich博士合作完成的工作将讨论烷基连接的二苯基环丙烯酮二聚体的光化学脱羰形成连接的二苯基乙炔。探索了溶液和固态光解作用,并证明了由德克斯特介导的能量转移机制。在第4章中,作为该初步研究的扩展,还研究了芳基束缚的二苯基环丙烯酮的反应,以及在材料化学中的应用。在该系统中,我们证明了通过键的能量转移机制的证据。;在第5章中,与Antoine Stopin博士合作完成了对芳基环丙烯酮与不同空间体积取代基的反应的描述,以期更好地理解和理解在固态光化学中测试拓扑化学假设的局限性,这表明晶体中的反应仅在分子运动量最小的情况下才能发生,而不会破坏晶格。在这里显示的两种情况下,尽管空间很大,但仍显示出发生了固-固重建相变的证据。这表明,即使对晶格的强度存在结构上的限制,反应仍可以在某些被激活以具有高势能的衬底中以固-固方式发生。

著录项

  • 作者

    Nielsen, Amy.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Chemistry Molecular.;Chemistry Physical.;Chemistry Organic.;Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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