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Molecular binding mechanisms of aqueous cadmium and lead to siderophores, bacteria and mineral surfaces.

机译:镉水溶液的分子结合机理并导致铁载体,细菌和矿物表面。

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摘要

Recent studies have shown that diverse groups of bacteria adsorb metals to similar extents and uptake can be modeled using a universal adsorption model. In this study, XAFS has been used to resolve whether binding sites determined for single species systems are responsible for adsorption in more complex natural bacterial assemblages. Results obtained from a series of XAFS experiments on pure Gram positive and Gram negative bacterial strains and consortia of bacteria as a function of pH and Cd loading suggests that every bacterial strain has a complex physiology and they are all slightly different from each other. Nevertheless from the metal adsorption chemistry point of view, the main difference between them lies in the site ratio of three fundamental sites only - carboxyl, phosphoryl and sulfide. Two completely different consortia of bacteria (obtained from natural river water, and soil system with severe organic contamination) were successfully modeled in the pH range 3.4--7.8 using the EXAFS models developed for single species systems. Results thus obtained can potentially have very high impact on the modeling of the complex bacterial systems in realistic geological settings, leading to further refinement and development of robust remediation strategies for metal contamination at macroscopic level.;In another study, solution speciation of Pb and Cd with DFO-B has been examined using a combination of techniques (ICP, TOC, thermodynamic modeling and XAFS). Results indicate that Pb does not complex with DFO-B at all until about pH 3.5, but forms a totally caged structure at pH 7.5. At intermediate pH conditions, mixture of species (one and two hydroxamate groups complexed) is formed. Cd on the other hand, does not complex until pH 5, forms intermediate complexes at pH 8 and is totally chelated at pH 9.;Further studies were conducted for Pb sorption to mineral surface kaolinite with and without DFO-B. In the absence of DFO-B, results suggest outer sphere and inner sphere sorption of Pb on kaolinite surface at acidic and circumneutral pH conditions respectively. In the presence of DFO-B, bulk sorption studies indicated that Pb sorption is enhanced in the presence of DFO-B around pH 6 and inhibited above pH 6.5. This was confirmed by x-ray fluorescence measurements. Extended XAFS study clearly indicated unwrapping of DFO-B molecule at the surface. Our study has unambiguously recognized it as a "Type A" ternary complex ("Type A" complex means surface-metal-ligand type of interaction). Taken together, bulk adsorption measurements and XAFS experiments represent a powerful approach for determining and modeling metal speciation and adsorption.
机译:最近的研究表明,不同种类的细菌以相似的程度吸附金属,并且可以使用通用吸附模型对吸收进行建模。在这项研究中,XAFS已用于解决为单一物种系统确定的结合位点是否负责更复杂的天然细菌集合体的吸附。通过一系列针对纯革兰氏阳性和革兰氏阴性细菌菌株的细菌XAFS实验获得的结果以及作为pH和Cd负载函数的细菌群落表明,每种细菌菌株都有复杂的生理学,并且彼此之间都略有不同。然而,从金属吸附化学的角度来看,它们之间的主要区别仅在于三个基本位点的位比:羧基,磷酰基和硫化物。使用专为单一物种系统开发的EXAFS模型,成功地在3.4--7.8的pH范围内对两个完全不同的细菌群落(从天然河水和严重有机污染的土壤系统中获得)进行了建模。如此获得的结果可能会对现实的地质环境中复杂细菌系统的建模产生非常高的影响,从而导致在宏观水平上进一步完善和开发针对金属污染的有效修复策略。;在另一项研究中,铅和镉的溶液形态已使用多种技术(ICP,TOC,热力学建模和XAFS)对DFO-B进行了检测。结果表明,Pb直到约pH 3.5才与DFO-B络合,但在pH 7.5时形成了完全笼状的结构。在中等pH条件下,会形成物质的混合物(一个和两个异羟肟酸酯基团复合)。另一方面,镉只有在pH 5时才能络合,在pH 8时会形成中间络合物,在pH 9时会完全螯合。在有和没有DFO-B的条件下,Pb都吸附在矿物表面的高岭石上。在没有DFO-B的情况下,结果表明分别在酸性和环境pH条件下高岭石表面上Pb的外球和内球吸附。在存在DFO-B的情况下,大量吸附研究表明,在pH 6左右的DFO-B存在下,Pb吸附会增强,在pH 6.5以上时,Pb吸附会受到抑制。通过X射线荧光测量证实了这一点。扩展的XAFS研究清楚地表明DFO-B分子在表面已解开。我们的研究明确地将其识别为“ A型”三元络合物(“ A型”络合物表示相互作用的表面-金属-配体类型)。总体而言,本体吸附测量和XAFS实验代表了确定和建模金属形态和吸附的强大方法。

著录项

  • 作者

    Mishra, Bhoopesh.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Condensed matter physics.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 244 p.
  • 总页数 244
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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