Broadband Dielectric Analysis of Clays: Impact of Cation Exchange Capacity, Water Content, and Porosity

电介质 放松(心理学) 材料科学 介电常数 含水量 土壤水分 矿物学 电导率 水分 复合材料 现象学模型 科尔-科尔方程 多孔性 粘土矿物 阳离子交换容量 分析化学(期刊) 岩石物理学 相对介电常数 离子交换 膨润土 岩土工程 化学 凝聚态物理
作者
Felix Schmidt,Norman Wagner,Ines Mulder,Katja Emmerich,Thierry Boré,Jan Bumberger
出处
期刊:Journal Of Geophysical Research: Solid Earth [Wiley]
卷期号:131 (3) 被引量:3
标识
DOI:10.1029/2025jb031945
摘要

Abstract Clay‐rich soils and sediments are key components of near‐surface systems, influencing water retention, ion exchange, and structural stability. Their complex dielectric response under moist conditions arises from surface–ion electrostatics and diffuse double layers that govern transport and retention processes. This study explores the broadband dielectric spectra (1 MHz–5 GHz) of four water‐saturated clays (kaolinite, illite, and two sodium‐activated bentonites) in a coaxial transmission‐line setup. The spectra were parameterized with two phenomenological relaxation models–the Generalized Dielectric Relaxation Model (GDR) and the Combined Permittivity‐Conductivity Model (CPCM)–and two mixture models: the Augmented Broadband Complex Dielectric Mixture Model (ABC‐M) and the Complex Refractive Index Model (CRIM). These approaches were evaluated for their ability to link dielectric relaxation behavior to key petrophysical parameters such as Cation Exchange Capacity (CEC), Volumetric Water Content (VWC), and porosity. The results demonstrate distinct spectral signatures correlating with clay mineralogy, particularly at low frequencies. Relaxation strength and apparent DC conductivity show systematic relationships with CEC, emphasizing the influence of clay‐specific surface properties. While expandable clays like bentonites displayed enhanced relaxation due to ion‐exchange dynamics, deviations in a soda‐activated bentonite highlighted the impact of chemical treatments on dielectric behavior. Overall, the study highlights both the potential and the limitations of broadband dielectric spectroscopy for soil and clay characterization. This study provides a systematic framework for linking clay mineral physics to applied electromagnetic methods. The results have significant implications for non‐invasive, frequency‐domain methods for characterizing soils and sediments, hydrological modeling, geotechnical evaluation, and environmental monitoring.
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