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用于同时测量二次谐波产生和流动电势的装置及一些测试应用。

A set-up for simultaneous measurement of second harmonic generation and streaming potential and some test applications.

机构信息

Karlsruher Institut für Technologie (KIT), Institut für Nukleare Entsorgung - INE, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

Karlsruher Institut für Technologie (KIT), Institute for Biological Interfaces 1 - IBG-1, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

出版信息

J Colloid Interface Sci. 2018 Nov 1;529:294-305. doi: 10.1016/j.jcis.2018.06.017. Epub 2018 Jun 15.

Abstract

We present a measurement cell that allows simultaneous measurement of second harmonic generation (SHG) and streaming potential (SP) at mineral-water interfaces with flat specimen that are suitable for non-linear optical (NLO) studies. The set-up directly yields SHG data for the interface of interest and can also be used to obtain information concerning the influence of flow on NLO signals from that interface. The streaming potential is at present measured against a reference substrate (PTFE). The properties of this inert reference can be independently determined for the same conditions. With the new cell, for the first time the SHG signal and the SP for flat surfaces have been simultaneously measured on the same surface. This can in turn be used to unambiguously relate the two observations for identical solution composition. The SHG test of the cell with a fluorite sample confirmed previously observed differences in NLO signal under flow vs. no flow conditions in sum frequency generation (SFG) investigations. As a second test surface, an inert ("hydrophobic") OTS covered sapphire-c electrolyte interface was studied to verify the zeta-potential measurements with the new cell. For this system we obtained combined zeta-potential/SHG data in the vicinity of the point of zero charge, which were found to be proportional to each other as expected. Furthermore, on the accessible time scales of the SHG measurements no effects of flow, flow velocity and stopped flow occurred on the interfacial water structure. This insensitivity to flow for the inert surface was corroborated by concomitant molecular dynamics simulations. Finally, the set-up was used for simultaneous measurements of the two properties as a function of pH in automated titrations with an oxidic surface. Different polarization combinations obtained in two separate titrations, yielded clearly different SHG data, while under identical conditions zeta-potentials were exactly reproduced. The polarization combination that is characteristic for dipoles perpendicular to the surface scaled with the zeta-potentials over the pH-range studied, while the other did not. The work provides an advanced approach for investigating liquid/surface interactions which play a major role in our environment. The set-up can be upgraded for SFG studies, which will allow more detailed studies on the chemistry and the water structure at a given interface, but also the combined study of specific adsorption including kinetics in combination with electrokinetics. Such investigations are crucial for the basic understanding of many environmental processes from aquatic to atmospheric systems.

摘要

我们提出了一种测量单元,该单元允许使用适合非线性光学(NLO)研究的平面样品同时测量二次谐波产生(SHG)和流动电势(SP)在水-矿物界面。该装置直接为感兴趣的界面提供 SHG 数据,并且还可以用于获得有关流动对来自该界面的 NLO 信号的影响的信息。目前,流动电势是针对参考基底(PTFE)进行测量的。对于相同的条件,可以独立确定这种惰性参考的特性。使用新的单元,首次在同一表面上同时测量了平面表面的 SHG 信号和 SP。反过来,这可以用于明确地将两种观察结果与相同的溶液组成相关联。使用萤石样品对单元进行的 SHG 测试证实了在总和频率产生(SFG)研究中流动与无流动条件下 NLO 信号的先前观察到的差异。作为第二个测试表面,研究了惰性(“疏水”)OTS 覆盖的蓝宝石电解质界面,以验证新单元的zeta 电势测量。对于该系统,我们在零电荷点附近获得了zeta 电势/SHG 数据的组合,这些数据彼此成比例,这是预期的。此外,在 SHG 测量的可访问时间尺度上,流动,流速和停止流动对界面水结构没有影响。分子动力学模拟证实了这种惰性表面对流动的不敏感性。最后,该装置用于在自动滴定中同时测量两种性质作为 pH 的函数,具有氧化表面。在两个单独的滴定中获得的不同极化组合产生了明显不同的 SHG 数据,而在相同条件下,zeta 电势被精确地重现。垂直于表面的偶极子的特征极化组合与所研究的 pH 范围内的 zeta 电势成比例缩放,而另一个则没有。这项工作为研究在我们的环境中起主要作用的液体/表面相互作用提供了一种先进的方法。该装置可以升级用于 SFG 研究,这将允许更详细地研究给定界面上的化学和水结构,还可以结合电动力学研究特定吸附,包括动力学。这些研究对于从水生到大气系统的许多环境过程的基本理解至关重要。

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