首页> 外文学位 >ROLE OF THE INTERFACE IN THE KINETICS AND MECHANISM OF SOLVENT EXTRACTION SYSTEMS (DITHIZONE, OXINE, INTERFACIAL AREA, DISPERSION).
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ROLE OF THE INTERFACE IN THE KINETICS AND MECHANISM OF SOLVENT EXTRACTION SYSTEMS (DITHIZONE, OXINE, INTERFACIAL AREA, DISPERSION).

机译:界面在溶剂萃取体系(二甲酮,氧化,界面区域,分散体)的动力学和机理中的作用。

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摘要

A high speed stirring apparatus was constructed for following the kinetics of metal ion extraction by chelating agents. The semi-automated system is capable of measuring reactions with half lives of 20 seconds or more with data being collected every second. Experimental data obtained with the device are superior to those collected by batch shakers, fixed interface cells, falling drop, or other stirring devices.;The role of the interfacial area in extraction kinetics was found in a system where diffusional effects are negligible. This information provides an answer to the question of whether the rate determining step of extraction occurs in either the bulk aqueous phase or in the interfacial region. The proportionality between rate and specific interfacial area was employed to find the magnitude of the contributions of the bulk and interfacial components and also allowed the calculation of the individual rate constants.;Evaluation of the bulk and interfacial rate constants yields important fundamental information as to the chemical nature and differences between the chloroform/water interface and the bulk aqueous phase. The results appear to illustrate that the interface is a more conducive medium for reaction between metal and ligand than the aqueous phase.;The role of foreign species, namely nonionic surfactants, on the rate of extraction was investigated to explore their applicability in solvent extraction. Nonionic surfactants were found to enhance the rates of extraction to different extents in different metal systems.;The use of a microporous Teflon membrane phase separator along with the thermodynamic relation, the Gibbs Equation, enabled the measurement of drop sizes in a two phase liquid-liquid dispersion. This allowed the determination of the quantity of interfacial area as a function of stir rate. The effect of interfacial area on the rate of extraction of five different chelating agents with various divalent metal ions was determined in this study.
机译:构造了高速搅拌装置,用于跟踪通过螯合剂提取金属离​​子的动力学。半自动系统能够测量半衰期为20秒或更长时间的反应,每秒收集一次数据。用该装置获得的实验数据优于通过分批振动器,固定界面单元,下落滴或其他搅拌装置收集的数据。在扩散作用可忽略的系统中发现了界面面积在萃取动力学中的作用。该信息回答了萃取速率确定步骤是在本体水相中还是在界面区域中发生的问题。使用速率与特定界面面积之间的比例关系来确定本体和界面成分的贡献量,并允许计算各个速率常数。;对本体和界面速率常数的评估可得出有关表面速率的重要基础信息。化学性质以及氯仿/水界面与本体水相之间的差异。结果表明,该界面比金属相更有利于金属与配体之间的反应。;研究了外来物质即非离子表面活性剂在萃取速率上的作用,以探讨其在溶剂萃取中的适用性。发现非离子表面活性剂可在不同的金属系统中不同程度地提高萃取速率。使用微孔特氟龙膜相分离器以及热力学关系吉布斯方程,可以测量两相液体中的液滴尺寸-液体分散体。这样就可以确定界面面积的数量与搅拌速度的关系。在这项研究中,确定了界面面积对五种不同的二价金属离子萃取不同螯合剂的速率的影响。

著录项

  • 作者

    APRAHAMIAN, EDWARD, JR.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 1985
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:51:08

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