Abstract

SUMMARYAchieving the greatest cleanup efficiency with minimal footprint remains a paramount goal of the water treatment industry. Toxic organic compounds threaten drinking water safety and require effective pretreatment. Hydroxyl radicals produced by the Fenton process (Fe2+/H2O2) destroy organic contaminants based on their strong oxidation potential. An upgraded reaction using solid catalysts, referred to as the Fenton-like process, was recently adopted to avoid the ferric sludge generation during the conventional Fenton process. However, most heterogeneous Fenton-like catalysts operate optimally at pH 3–5 and quite weakly in near-neutral water bodies. Here, we evaluate the feasibility of an electrolytically localized acid compartment (referred to as the Ella process) produced by electrochemical water splitting under flow-through conditions to facilitate the Fenton-like process. The Ella process boosts the activity of an immobilized iron oxychloride catalyst >10-fold, decomposing organic pollutants at a high flow rate. The robust performance in complex water bodies further highlights the promise of this platform.

Highlights

  • Various toxic organic compounds in the environment pose considerable threats to human health and the ecosystem

  • Hydroxyl radicals produced by the Fenton process (Fe2+/H2O2) destroy organic contaminants based on their strong oxidation potential

  • The electrolytically localized acidic-compartment (Ella) process boosts the activity of an immobilized iron oxychloride catalyst >10-fold, decomposing organic pollutants at a high flow rate

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Summary

A Robust Flow-Through Platform for Organic Contaminant Removal

The MIT Faculty has made this article openly available. Please share how this access benefits you. Clean water is a sustainable development goal of the United Nations, but it is threatened by toxic organic pollutants. Chen et al aim to upgrade an advanced oxidation water treatment unit, using electricity to generate the strong acidity required by the Fenton process, providing a path to green water treatment. Cell Reports Physical Science 2, 100296 January 20, 2021 a 2020 The Authors. Long Chen,[1] Akram N. Alshawabkeh,1,* Shayan Hojabri,[1] Meng Sun,[2] Guiyin Xu,3,* and Ju Li3,4,5,*

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