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Computational Evaluation of Mg-Salen Compounds as Subsurface Fluid Tracers: Molecular Dynamics Simulations in Toluene-Water Mixtures and Clay Mineral Nanopores

机译:Mg-Salen化合物作为地下流体示踪剂的计算评价:甲苯-水混合物和粘土矿物纳米孔中的分子动力学模拟

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摘要

Molecular tracers that can be selectively placed underground and uniquely identified at the surface using simple on-site spectroscopic methods would significantly enhance subsurface fluid monitoring capabilities. To ensure their widespread utility, the solubility of these tracers must be easily tuned to oil- or water-wet conditions as well as reducing or eliminating their propensity to adsorb onto subsurface rock and/or mineral phases. In this work, molecular dynamics simulations were used to investigate the relative solubilities and mineral surface adsorption properties of three candidate tracer compounds comprising Mg-salen derivatives of varying degrees of hydrophilic character. Simulations in water-toluene liquid mixtures indicate that the partitioning of each Mg-salen compound relative to the interface is strongly influenced by the degree of hydrophobicity of the compound. Simulations of these complexes in fluid-filled mineral nanopores containing neutral (kaolinite) and negatively charged (montmorillonite) mineral surfaces reveal that adsorption tendencies depend upon a variety of parameters, including tracer chemical properties, mineral surface type, and solvent type (water or toluene). Simulation snapshots and averaged density profiles reveal insight into the solvation and adsorption mechanisms that control the partitioning of these complexes in mixed liquid phases and nanopore environments. This work demonstrates the utility of molecular simulation in the design and screening of molecular tracers for use in subsurface applications.
机译:可以使用简单的现场光谱学方法将分子示踪剂选择性地置于地下并在地表进行唯一标识,这将显着增强地下流体监测能力。为了确保其广泛的用途,这些示踪剂的溶解度必须容易地调整至油或水湿润的条件,以及降低或消除其吸附到地下岩石和/或矿物相上的倾向。在这项工作中,使用分子动力学模拟研究了三种候选示踪化合物的相对溶解度和矿物表面吸附特性,这些示踪化合物包含不同程度的亲水性的Mg-salen衍生物。在水-甲苯液体混合物中进行的模拟表明,每种Mg-salen化合物相对于界面的分配都受到该化合物疏水性的强烈影响。在含有中性(高岭石)和带负电(蒙脱石)矿物表面的充满流体的矿物纳米孔中对这些络合物的模拟显示,吸附趋势取决于多种参数,包括示踪剂的化学性质,矿物表面类型和溶剂类型(水或甲苯) )。模拟快照和平均密度分布图揭示了溶剂化和吸附机制的见解,这些溶剂化和吸附机制可控制这些复合物在混合液相和纳米孔环境中的分配。这项工作证明了分子模拟在设计和筛选用于地下应用的分子示踪剂中的实用性。

著录项

  • 来源
    《Energy & fuels》 |2018年第4期|4969-4978|共10页
  • 作者单位

    Sandia Natl Labs, Geochem Dept, POB 5800,MS 0754, Albuquerque, NM 87185 USA;

    Sandia Natl Labs, Adv Mat Lab, 1001 Univ Blvd Southeast, Albuquerque, NM 87106 USA;

    Sandia Natl Labs, Adv Mat Lab, 1001 Univ Blvd Southeast, Albuquerque, NM 87106 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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