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DNAPL-Responsive Hydrogel Nanoreactor Encapsulating nZVI for Enhanced Degradation of Chlorinated Contaminants in
Kaijian Sang1, Zhenjie Li1, Xiaoming Tao1
1State Key Laboratory of Soil Pollution Control and Safety, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou 310058, China.
Abstract:
The remediation of dense nonaqueous phase liquids (DNAPLs) in groundwater presents a persistent challenge, as conventional technologies suffer from side reactions with bulk water rather than chlorinated solvents within DNAPL source zones. By engineering DNAPL-responsive poly(N-isopropylacrylamide) (PNIPAM) hydrogels with precisely controlled hydrophobic domains, we fabricated nanoscale zerovalent iron (nZVI) reactors (nZVI@PNIPAM) via in situ reduction of incorporated Fe3+ ions. The hydrogel encapsulation enabled nZVI to remain well-dispersed, spontaneously penetrated porous media, and significantly suppressed side reactions with water. Crucially, the nanoreactors leveraged the selective interaction between DNAPLs and PNIPAM's hydrophobic functional groups as a trigger, exposing encapsulated reactive nZVI exclusively at contamination interfaces through a rapid conformational transition and dehydration of PNIPAM. This interfacial interaction yields unprecedented efficiency, achieving 4.4-12.3-fold higher electron utilization for degradation of seven typical chlorinated solvents than conventional nZVI while suppressing water corrosion over 600-fold. Field-relevant evaluations demonstrated consistent performance across broad hydrochemical conditions (pH 6-9, 0-1000 mg L-1 KCl, 0-200 mg L-1 natural organic matter), with over 90% DNAPL removal in real contaminated groundwater. Our mechanistic discovery of pollutant-responsive activation represents a significant advance over current diffusion-limited approaches, potentially revolutionizing targeted in situ groundwater remediation strategies.
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