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Updated: Jan 11, 2026

Integrated Field Lysimetry and Porewater Sampling for Evaluation of Chemical Mobility in Soils and Established Vegetation
Published on: July 4, 2014
Precipitation-Dissolution Switchable Surfactant-Based Microemulsions: Fabrication and Potential Applications in
Bo Zhu1, Hui Chen1, Huanjin Zou1,2
1Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical & Materials Engineering, Jiangnan University, Wuxi 214122, P. R. China.
Abstract:
In surfactant-enhanced soil washing (SESW) using microemulsions as extractants, the efficient and rapid postprocessing of well-emulsified SESW eluents, such as effectively releasing the solubilizate and recycling surfactants, poses significant challenges that need to be addressed. Therefore, a precipitation-dissolution switchable surfactant, sodium dodecyl seleninate (DSeNa), was used to prepare DSeNa-based microemulsions via the phase diagram approach. When acidified with HCl, water-soluble DSeNa was converted into dodecyl seleninic acid (DSeH), an insoluble solid, and by this means, the monophasic DSeNa-based microemulsions were rapidly and efficiently demulsified. Irrespective of the types of microemulsions, a distinct three-phase system consisting of DSeH, oil, and aqueous phases was obtained. This facilitates the recycling of DSeH through filtration with a recycling rate of over 96.5%. The recycled DSeH, with a purity approaching 100%, can be easily and almost quantitatively regenerated into DSeNa by reacting with NaOH. The oil-in-water type microemulsions show potential as extractants for the SESW of para-nitrochlorobenzene (pNCB) from soil, attaining a pNCB removal rate of up to 99.9%. Subsequently, approximately 96.9% of DSeH was recycled after the HCl-induced demulsification of the SESW eluent. Additionally, 99.9% of the total pNCB in the SESW eluent was separated into the oil phase. After being adsorbed by activated carbon and anion-exchange resin, the chemical oxygen demand value of the aqueous phase was reduced to around 7.8 mg O2 L-1.
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