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beta-Cyanoporphyrins Their Synthesis and Applications in Molecular Systems for Artificial Photosynthesis.

机译:β-氰基卟啉及其在人工光合作用分子系统中的合成和应用。

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摘要

As sunlight is an ideal source of energy on a global scale, there are several approaches being developed to harvest it and convert it to a form that can be used. One of these is though mimicking the processes in natural photosynthesis. Artificial photosynthetic systems include dye sensitized solar cells for the conversion of sunlight to electricity, and photoelectrosynthetic cells which use sunlight to drive water oxidation and hydrogen production to convert sunlight to energy stored in fuel. Both of these approaches include the process of the conversion of light energy into chemical potential in the form of a charge-separated state via molecular compounds. Porphyrins are commonly used as sensitizers as they have well suited properties for these applications. A high potential porphyrin with four nitrile groups at the beta positions, a beta-cyanoporphyrin (CyP), was investigated and found to be an excellent electron acceptor, as well as have the necessary properties to be used as a sensitizer for photoelectrosynthetic cells for water oxidation. A new synthetic method was developed which allowed for the CyP to be used in a number of studies in artificial photosynthetic systems. This dissertation reports the theories behind, and the results of four studies utilizing a CyP for the first time; as a sensitizer in a DSSC for an investigation of its use in light driven water oxidation photoelectrosynthetic cells, as an electron acceptor in a proton coupled electron transfer system, in a carotene-CyP dyad to study energy and electron transfer processes between these moieties, and in a molecular triad to study a unique electron transfer process from a C60 radical anion to the CyP. It has been found that CyPs can be used as powerful electron acceptors in molecular systems to provide a large driving force for electron transfer that can aid in the process of the conversion of light to electrochemical potential. The results from these studies have led to a better understanding of the properties of CyPs, and have provided new insight into several electron transfer reactions.
机译:由于阳光是全球范围内理想的能源,因此正在开发多种方法来收集阳光并将其转换为可以使用的形式。其中之一是模仿自然光合作用的过程。人工光合作用系统包括染料敏化太阳能电池,用于将太阳光转化为电能;以及光电子合成电池,其利用太阳光驱动水氧化和产氢,将太阳光转化为存储在燃料中的能量。这两种方法都包括通过分子化合物将光能以电荷分离态的形式转换为化学势的过程。卟啉通常用作敏化剂,因为它们具有非常适合这些应用的特性。研究了在β位置具有四个腈基的高电位卟啉(β-氰基卟啉(CyP)),它是一种出色的电子受体,并且具有用作水的光电合成细胞的敏化剂的必要特性。氧化。开发了一种新的合成方法,使得CyP可以在人造光合作用系统的许多研究中使用。本文首次报道了背后的理论,并首次进行了四项利用CyP的研究结果。在DSSC中用作敏化剂,以研究其在光驱动水氧化光电子合成电池中的用途,在质子偶联电子转移系统中用作电子受体,在胡萝卜素-CyP二聚体中用于研究这些部分之间的能量和电子转移过程,以及在一个分子三元组中研究了从C60自由基阴离子到CyP的独特电子转移过程。已经发现,CyPs可以用作分子系统中强大的电子受体,从而为电子转移提供大的驱动力,从而有助于将光转化为电化学势的过程。这些研究的结果使人们对CyPs的性质有了更好的了解,并为几种电子转移反应提供了新的见识。

著录项

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Organic chemistry.;Alternative Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 288 p.
  • 总页数 288
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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