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Efficient H2O2Electrosynthesis and Its Electro-Fenton Application for Refractory Organics Degradation

Authors :
Li, Lei
Bai, Jing
Jiang, Panyu
Zhang, Yan
Zhou, Tingsheng
Wang, Jiachen
Zhou, Changhui
Li, Jinhua
Zhou, Baoxue
Source :
Engineering / Chinese Academy of Engineering; 20230101, Issue: Preprints
Publication Year :
2023

Abstract

Hydrogen peroxide (H2O2) in situelectrosynthesis by O2reduction reaction is a promising alternative to the conventional Fenton treatment of refractory wastewater. However, O2mass transfer limitation, cathodic catalyst selectivity, and electron transfer in O2reduction remain major engineering obstacles. Here, we have proposed a systematic solution for efficient H2O2generation and its electro-Fenton (EF) application for refractory organic degradation based on the fabrication of a novel ZrO2/CMK-3/PTFE cathode, in which polytetrafluoroethylene (PTFE) acted as a hydrophobic modifier to strengthen the O2mass transfer, ZrO2was adopted as a hydrophilic modifier to enhance the electron transfer of O2reduction, and mesoporous carbon (CMK-3) was utilized as a catalyst substrate to provide catalytic active sites. Moreover, feasible mass transfer of O2from the hydrophobic to the hydrophilic layer was designed to increase the contact between O2and the reaction interface. The H2O2yield of the ZrO2/CMK-3/PTFE cathode was significantly improved by approximately 7.56 times compared to that of the conventional gas diffusion cathode under the same conditions. The H2O2generation rate and Faraday efficiency reached 125.98 mg·cm−2·h−1(normalized to 5674.04 mmol·g−1·h−1by catalyst loading) and 78.24% at −1.3 V versus standard hydrogen electrode (current density of −252 mA·cm−2), respectively. The high H2O2yield ensured that sufficient ·OH was produced for excellent EF performance, resulting in a degradation efficiency of over 96% for refractory organics. This study offers a novel engineering solution for the efficient treatment of refractory wastewater using EF technology based on in situhigh-yield H2O2electrosynthesis.

Details

Language :
English
ISSN :
20958099 and 20960026
Issue :
Preprints
Database :
Supplemental Index
Journal :
Engineering / Chinese Academy of Engineering
Publication Type :
Periodical
Accession number :
ejs62351599
Full Text :
https://doi.org/10.1016/j.eng.2023.02.005