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Beyond phase separation: New insights into chlorinated compound formation during Fe(III) coagulation with landfill
Rundong Chen1, Wenxiao Zheng1, Shishu Zhu1
1The Key Lab of Pollution Control and Ecosystem Restoration in Industry Clusters, Ministry of Education, School of Environment and Energy, South China University of Technology, Guangzhou 510006, China.
Abstract:
Coagulation with Fe(III) salts is a prevalent phase separation method for organic wastewater treatment. Nevertheless, our industrial applications have shown that using Fe(III) coagulants in landfill leachate treatment leads to an unexpected increase in the bio-toxicity of the effluent. This observation prompts us to identify the toxic compounds and explore their formation mechanisms. Laboratory experiments demonstrate that while Fe(III) coagulation removed approximately 92 % of the total organic matter from landfill leachate, it increased the acute bio-toxicity by about 14.5 times relative to the untreated effluent. Molecular analysis of the dissolved organic matter (DOM) in the leachate using Fourier transform ion cyclotron resonance mass spectrometry revealed a significant generation of chlorinated organic compounds during coagulation process. Compared to the Fenton system, the chlorinated compounds formed after coagulation showed a lower oxidation level and predominantly saturated and reduced state. The mechanistic studies suggest that reactive oxygen and chlorine species have a minimal role in the coagulation-induced chlorination. Instead, it is proposed that the redox reaction between Fe(III) and DOM leads to the formation of phenolic radicals, which facilitate nucleophilic reactions with Cl- (as an electron donor), thereby generating chlorinated compounds.
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