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Experimental Column Setup for Studying Anaerobic Biogeochemical Interactions Between Iron OxyHydroxides, Trace Elements, and Bacteria
Published on: December 19, 2017
Accelerating natural purification of contaminated soils through endogenous iron cycle and hydroxyl radical production
Xiaoshan Zheng1, Mengxi Tan1, Chong Zhou1
1State Key Laboratory of Soil Pollution Control and Safety, Department of Environmental Science, Zhejiang University, Hangzhou 310058, China.
Abstract:
Soil contamination with organic chemicals is a critical global environmental challenge. Recently, monitored natural purification, though eco-friendly, suffers from slow remediation rates. Here, we report an innovative approach through regulating endogenous iron cycle and hydroxyl radical (•OH) productions to accelerate natural soil purification while maintaining soil functionality. By periodically adding mild concentrations of H2O2 to activate soil iron minerals, we triggered an endogenous Fenton-like reaction, resulting in a significant 10.4-fold increase in •OH generation. Simultaneously, oxidized iron was regenerated through microbial reduction, completing the biogeochemical redox cycles of iron. Over five cycles of these redox processes, the pollutant removal rate was enhanced by 6.3-fold, achieving > 95 % phenol degradation. Compared to chemical remediation, this approach reduced organic matter loss by 91 % and preserved 96 % microbial activity. Furthermore, treated soils maintained fertility, supporting vigorous lettuce and cabbage growth. To further advance this system, we developed an on-site H2O2 production system powered solely by sunlight, water, and air, eliminating the need for additional energy or chemical inputs. This integrated system demonstrates the potential for accelerated and sustainable soil remediation. Our findings highlight the promise of accelerated natural purification as a transformative approach to address soil contamination while safeguarding environmental health and agricultural productivity.
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