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粘土-氧化物混合颗粒的光谱感应极化。

Spectral induced polarization of clay-oxide hybrid particles.

机构信息

Faculty of Agriculture, Food and Environment, Hebrew University, Jerusalem, Israel.

Civil and Environmental Engineering Faculty, Technion, Haifa, Israel.

出版信息

J Colloid Interface Sci. 2020 Oct 1;577:173-180. doi: 10.1016/j.jcis.2020.05.029. Epub 2020 May 20.

Abstract

The properties of clays and oxides govern many environmental processes, consequently, ongoing effort is invested in developing non-destructive, in-situ analytical tools that reflect these properties. Herein, the physicochemical properties of montmorillonite (MMT) and iron-oxide coated montmorillonite (FeOx-MMT) were characterized using common analytical techniques, and the results were compared to spectral induced polarization (SIP) measurements. FeOx-MMT particles showed a lower CEC, higher pH dependency of the surface charge, and lower suspension stability. Also, the size of the primary particles increased following iron-oxide deposition. SIP measurements over a range of salinities showed that the effective polarization length of the clays was in the order of several microns, suggesting the measurements of aggregates (not primary particles). Moreover, FeOx-MMT particles were more compact than MMT, and their size decreased with increasing salinity due to compaction of the EDL and arrangement of primary particles in the aggregate. The SIP-response to pH changes agreed with zeta potential measurements; at low pH values, MMT exhibited higher polarization due to the higher CEC. However, at a high pH, the differences diminish due to deprotonation of the Fe-OH surface groups. These findings suggest that SIP is a sensitive method that can detect changes in the surface chemistry of soil particles.

摘要

粘土和氧化物的性质控制着许多环境过程,因此,人们一直在努力开发反映这些性质的非破坏性、原位分析工具。在此,采用常见的分析技术对蒙脱石 (MMT) 和氧化铁包覆蒙脱石 (FeOx-MMT) 的物理化学性质进行了表征,并将结果与光谱感应极化 (SIP) 测量进行了比较。FeOx-MMT 颗粒表现出更低的 CEC、更高的表面电荷 pH 依赖性和更低的悬浮稳定性。此外,在氧化铁沉积后,初级颗粒的尺寸增大。在一系列盐度下进行的 SIP 测量表明,粘土的有效极化长度为几微米,这表明测量的是团聚体(不是初级颗粒)。此外,FeOx-MMT 颗粒比 MMT 更紧凑,并且由于 EDL 的压缩和团聚体中初级颗粒的排列,其粒径随盐度的增加而减小。SIP 对 pH 值变化的响应与 ζ 电位测量一致;在低 pH 值下,由于更高的 CEC,MMT 表现出更高的极化。然而,在高 pH 值下,由于 Fe-OH 表面基团的去质子化,差异减小。这些发现表明,SIP 是一种敏感的方法,可以检测土壤颗粒表面化学性质的变化。

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