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Stability of aqueous silica nanoparticle dispersions

机译:二氧化硅纳米颗粒水分散体的稳定性

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In this study, we present quantification methods for nanoparticle stability analysis using non-intrusive analytical techniques: attenuated total reflectance, Fourier transform infrared (ATR-FTIR) spectroscopy, ultraviolet - visible (UV - vis) spectrophotometer, zeta potential analyses, and dynamic light scattering (DLS). We use these techniques to study the stability of silica nanoparticle dispersions and the effects of pH, temperature, and electrolytes that would be encountered in oil field brines in a reservoir. Spectral analysis of the Si - O bond at wavenumber of 1110 cm~(-1) with the ATR-FTIR indicates a structural change on the surface of silica particles as the dispersion pH changes, which agrees with zeta potential measurements. We define a critical salt concentration (CSC) for different salts, NaCl, CaCl_2, BaCl_2, and MgCl_2, above which the silica dispersion becomes unstable. Three distinct stages of aggregation occur in the presence of salt: clear dispersed, turbid, and separated phases. Divalent cations Mg ~(2+), Ca~(2+), and Ba~(2+) are more effective in destabilizing silica nanoparticle dispersion than the monovalent cation Na ~+. The CSC for Na~+ is about 100 times more than for Ca~(2+), Ba~(2+), and Mg~(2+). Among the divalent cations studied, Mg~(2+) is the most effective in destabilizing the silica particles. The CSC is independent of silica concentration, and lowers at high temperature.
机译:在这项研究中,我们介绍了使用非侵入式分析技术进行纳米颗粒稳定性分析的定量方法:衰减全反射率,傅立叶变换红外(ATR-FTIR)光谱,紫外-可见(UV-vis)分光光度计,ζ电位分析和动态光散射(DLS)。我们使用这些技术来研究二氧化硅纳米颗粒分散液的稳定性,以及在储层中的油田盐水中会遇到的pH,温度和电解质的影响。用ATR-FTIR对波数为1110 cm〜(-1)的Si-O键进行光谱分析表明,随着分散液pH值的变化,二氧化硅颗粒表面的结构发生了变化,这与zeta电位测量结果一致。我们定义了不同盐,NaCl,CaCl_2,BaCl_2和MgCl_2的临界盐浓度(CSC),在此之上,二氧化硅分散体变得不稳定。在盐的存在下会发生三个不同的聚集阶段:清晰的分散相,混浊相和分离相。与一价阳离子Na〜+相比,二价阳离子Mg〜(2 +),Ca〜(2+)和Ba〜(2+)在使二氧化硅纳米颗粒分散液不稳定方面更有效。 Na〜+的CSC约为Ca〜(2 +),Ba〜(2+)和Mg〜(2+)的100倍。在研究的二价阳离子中,Mg〜(2+)最有效地破坏了二氧化硅颗粒的稳定性。 CSC与二氧化硅浓度无关,并且在高温下会降低。

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