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A sequencing electroreduction-electrooxidation system driven by atomic hydrogen for enhancing 2,4-dichloronitrobenzene removal from wastewater. | LitMetric

A sequencing electroreduction-electrooxidation system driven by atomic hydrogen for enhancing 2,4-dichloronitrobenzene removal from wastewater.

Environ Res

State Key Laboratory of Pollution Control and Resource Reuse, Shanghai Institute of Pollution Control and Ecological Security, School of Environmental Science and Engineering, Tongji University, 1239 Siping Road, Shanghai, 200092, China; Tongji Advanced Membrane Technology Center, Shanghai, 200092, China. Electronic address:

Published: July 2024

AI Article Synopsis

  • * A specialized cathode made of palladium on titanium was developed to produce atomic hydrogen (H*) and activate hydrogen peroxide (HO) into hydroxyl radicals (•OH), which are crucial for the degradation process.
  • * The system achieved a 94.7% removal rate of 2,4-DCNB with minimal HO usage, significantly reduced toxicity to marine bacteria, and demonstrated that H* is key in driving both reduction and oxidation processes for cleaning contaminated water.

Article Abstract

The sequencing electroreduction-electrooxidation process has emerged as a promising approach for the degradation of the chloronitrobenzenes (CNBs) due to its elimination of electro-withdrawing groups in the reduction process, facilitating further removal in the subsequent oxidation process. Herein, we developed a cathode consisting of atom Pd on a Ti plate, which enabled the electro-generation of atomic hydrogen (H*) and the efficient electrocatalytic activation of HO to hydroxyl radical (•OH). Cyclic voltammetry (CV) curves and electron spin resonance (ESR) spectra verified the existence of H* and •OH. The electroreduction-electrooxidation system achieved 94.7% of 20 mg L 2,4-DCNB removal with a relatively low HO addition (5 mM). Moreover, the inhibition rate of Photobacterium phosphoreum in the effluent decreased from 95% to 52% after the sequencing electroreduction-electrooxidation processes. It was further revealed that the H* dominated the electroreduction process and triggered the electrooxidation process. Our work sheds light on the effective removal of electron-withdrawing groups substituted aromatic contaminants from water and wastewater.

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Source
http://dx.doi.org/10.1016/j.envres.2024.118986DOI Listing

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