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Hierarchical complexity in metal-organic materials: From layers to polyhedra to supermolecular building blocks.

机译:金属有机材料的层级复杂性:从层到多面体再到超分子构造块。

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摘要

The design and synthesis of novel functional materials with fine-tunable physical and chemical properties has been an aspiration of materials scientists since at least Feynman's famous speech "There's Plenty of Room at the Bottom" which has fittingly been credited with ushering in the nanotechnology era. Crystal engineering, as the solid-state manifestation of supramolecular chemistry, is well positioned to make substantial contributions to this worthwhile endeavor. Within the realm of crystal engineering resides the subdiscipline of metal-organic materials (MOMs) which pertains most simplistically to the coordination bond and includes such objects as coordination polymers, metal-organic frameworks (MOFs), and discrete architectures, each of which share the common aspect that they are designed to be modular in nature. While metal-organic materials have been studied for quite some time, only recently have they enjoyed an explosion in significance and popularity, with much of this increased attention being attributed to two realizations; that this inherent modularity ultimately results in an almost overwhelming degree of diversity and subsequently, that this diversity can give rise to effective control of the properties of functional materials. At long last the goal of attaining fine-tunablity may be within our grasp.;In addition to high levels of diversity, MOMs are also characterized by a broad range of complexity, both in their overall structures and in the nature of their constituents. From the simplest molecular polygons to extended 3-periodic frameworks of unprecedented topologies, MOMs have the capacity to adopt an array of structural complexities. Moreover, there has been a recent trend of increasing complexity of the very building blocks that construct the framework. It is the aim of the research presented in this dissertation to survey these two principle aspects of MOMs, diversity and complexity, by focusing upon the use of polycarboxylates and first row transition metals to synthesize several series of closely related materials imbued with varied levels of complexity. Through the use of single crystal X-ray diffraction and the characterization of the materials' properties, the structure-function relationship has been probed. Finally, novel design strategies incorporating supermolecular building blocks for the creation of a new generation of MOMs has been addressed.
机译:具有至少可调节的物理和化学特性的新型功能材料的设计和合成一直是材料科学家的愿望,至少是因为费曼著名的演讲“底部有足够的空间”,这一演讲被恰当地归功于纳米技术时代。作为超分子化学的固态表现,晶体工程已做好充分的准备,可以为这项有价值的工作做出实质性的贡献。晶体工程领域内是金属有机材料(MOM)的子学科,该学科最简单地与配位键相关,并且包括诸如配位聚合物,金属有机骨架(MOF)和离散结构之类的对象,每个对象共享它们在本质上被设计为模块化的共同方面。尽管对金属有机材料的研究已经有一段时间了,但直到最近才使它们的重要性和流行性得到爆炸式增长,其中越来越多的注意力归功于两个认识。这种固有的模块化最终导致了几乎压倒性的多样性,随后,这种多样性可以引起对功能材料性能的有效控制。最终,实现精细度的目标可能就在我们的掌握之内;除了高度的多样性之外,MOM的特征还在于,其总体结构和组成性质都具有广泛的复杂性。从最简单的分子多边形到前所未有的拓扑扩展的3周期框架,MOM都具有采用一系列结构复杂性的能力。此外,最近的趋势是,构成框架的各个构建基块的复杂性不断增加。本论文的研究目的是通过着重于利用聚羧酸盐和第一排过渡金属来合成一系列紧密相关的,复杂程度各不相同的材料,来研究MOM的这两个主要方面,即多样性和复杂性。 。通过使用单晶X射线衍射和表征材料的性能,已探究了结构-功能关系。最后,已经提出了结合超分子构件的新颖设计策略以创建新一代MOM。

著录项

  • 作者

    Perry, John Jackson, IV.;

  • 作者单位

    University of South Florida.;

  • 授予单位 University of South Florida.;
  • 学科 Chemistry Organic.;Chemistry Polymer.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 318 p.
  • 总页数 318
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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