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Effects of salinity on the microscopic interaction and sedimentation behavior of halloysite nanotube
  • Kwon, Yeong Man ;
  • Noh, Namgyu ;
  • Dae, Kyun Seong ;
  • Qureshi, Yusra ;
  • Kwon, Ji Hwan ;
  • Cho, Gye Chun ;
  • Chang, Ilhan ;
  • Yuk, Jong Min
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Publication Year
2024-11-01
Publisher
Elsevier Ltd
Citation
Applied Clay Science, Vol.260
Keyword
DLVO theoryFlocculationHalloysite nanotube (HNT)In-situ liquid-phase microscopySalinitySedimentation
Mesh Keyword
DLVO theoryHalloysite nanotubeHalloysite nanotubesIn-situ liquid-phase microscopyLiquid PhaseLiquid phasisMicroscopic interactionResidual saltsSalinitySalt ions
All Science Classification Codes (ASJC)
Water Science and TechnologySoil ScienceGeologyGeochemistry and Petrology
Abstract
The response of clay minerals to changes in pore fluid salinity, particularly in coastal areas such as bays, lagoons, sounds, sloughs, and estuaries, has not been extensively studied. Herein, the influence of salinity exchange on the microscopic interaction and sedimentation behavior of halloysite nanotubes in an aqueous condition was investigated. In-situ microscopic observations and macro-scale sedimentation experiments reveal that halloysite nanotubes tend to disperse in pore fluids with high ionic strength because salt ions weaken the edge-to-face halloysite fabrics. Salinity exchange experiments demonstrate the permanent alteration of flocculation and sedimentation behavior due to the residual salt ions on the HNT surfaces. Even when the salt concentration is restored to its initial value, the presence of residual salts leads to the formation of a large and open floc structure, resulting in slower settling and a loosely packed final sediment. Our study provides a thorough understanding of the salt effect on sediment formation, including changes in the microscopic clay particle fabrics during salinity exchange.
ISSN
0169-1317
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34376
DOI
https://doi.org/10.1016/j.clay.2024.107511
Fulltext

Type
Article
Funding
This research was financially supported by the National Research Foundation (NRF) of Korea (Grants No. 2022R1A2C2091517 , 2023R1A2C300559611 , 2022R1A2C2008929 ).
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Chang, Il Han장일한
Department of Civil Systems Engineering
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