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Crystal Growth and Morphology Control of Calcium Oxalate Grown in Hydrogels.

机译:水凝胶中草酸钙的晶体生长和形貌控制。

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摘要

Biominerals found in living organisms have diverse biological functions and unique properties arising from the particular structure, orientation, and morphology of the constituent minerals. A systematic investigation toward studying the formation mechanisms of biominerals in an extracellular matrix-like environment is essential for understanding biomineralization processes and for developing bio-inspired materials. The main objective of this thesis is to investigate the crystallization of calcium oxalate, the primary mineral constituent of kidney stones, in gelatin hydrogels. Hydrogels serve as excellent matrix models for biomineralization media and can provide ways for regulating the local supersaturation levels by controlling the diffusion rate of the reactant ions. We employed a double-diffusion experimental set-up in which a hydrogel (serving as the crystallization medium) is brought in contact with two reservoirs that serve as sources for the reactants, thus allowing for counter diffusion of the reactant ions across the hydrogel column and precipitation of calcium oxalate in the gel. An experimental set-up of this kind can provide insight into different growth conditions in a single experiment.;The morphology of calcium oxalate crystals that precipitated in the hydrogels was quite different from that of crystals grown in aqueous solutions. In addition, the morphology of the particles was dependent on their location of appearance inside the hydrogel column (and their corresponding proximity from the source reservoirs). We studied the nucleation, growth, and morphological evolution of calcium oxalate crystals by varying the hydrogel density and the reservoir ion concentrations. The observed outcomes of the gel-mediated crystallization of calcium oxalate were rationalized on the basis of gel-crystal/lattice ion pair interactions. Gelatin hydrogels did not seem to influence the polymorphic form of calcium oxalate (only the thermodynamically stable monohydrate was formed). However, gelatin was incorporated in the growing crystals, thus affecting the morphologies and creating organic-inorganic composites. The morphology and physical properties of the calcium oxalate-gelatin composites produced in this study bear strong resemblance to the biogenic crystalluria. We further evaluated the basic precipitation behavior in the context of fundamental diffusion phenomena.
机译:在生物体中发现的生物矿物具有多种生物学功能,并且由于组成矿物的特殊结构,取向和形态而具有独特的特性。对于研究细胞外基质样环境中生物矿物质的形成机理的系统研究对于理解生物矿化过程和开发生物启发性材料至关重要。本论文的主要目的是研究明胶水凝胶中草酸钙的结晶,草酸钙是肾结石的主要矿物质。水凝胶是生物矿化介质的出色基质模型,可以通过控制反应物离子的扩散速率提供调节局部过饱和水平的方法。我们采用了双扩散实验装置,其中使水凝胶(用作结晶介质)与用作反应物来源的两个储库接触,从而允许反应物离子在水凝胶柱和反凝胶上的扩散相反。草酸钙在凝胶中沉淀。这种实验设置可以在单个实验中洞悉不同的生长条件。;在水凝胶中沉淀的草酸钙晶体的形态与在水溶液中生长的晶体的形态有很大不同。另外,颗粒的形态取决于它们在水凝胶柱内部的出现位置(以及它们与源储层的相应距离)。我们通过改变水凝胶密度和储层离子浓度研究了草酸钙晶体的成核,生长和形态演变。基于凝胶-晶体/晶格离子对相互作用,合理观察到的凝胶介导的草酸钙结晶的结果。明胶水凝胶似乎并不影响草酸钙的多晶型形式(仅形成热力学稳定的一水合物)。但是,明胶掺入了正在生长的晶体中,从而影响了形态并形成了有机-无机复合材料。在这项研究中生产的草酸钙-明胶复合材料的形态和物理性质与生物结晶性非常相似。我们在基本扩散现象的背景下进一步评估了基本降水行为。

著录项

  • 作者

    Suryadevara, Kali Ananth.;

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Chemical engineering.
  • 学位 M.S.
  • 年度 2012
  • 页码 118 p.
  • 总页数 118
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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