In Situ Oxygen Shuttling within a Bilayer Electrified Membrane Enables Aeration-Free Electro-Fenton Water Purification

氧气 析氧 化学工程 化学 阳极 双层 曝气 法拉第效率 阴极 氧气输送 电化学 克拉克电极 材料科学 降级(电信) 分解水 原位 纳米技术 微型多孔材料 烟气 极限氧浓度 氧化还原 剥离(纤维) 活性氧 化学需氧量 电解水
作者
Zhenxiang Pan,Yu Liao,Z H Jiang,Fuxin Zheng,Bizhen Zeng,Jianan Niu,Qiliang Xiong,Tianchi Cao,Gang Han
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (27): 19687-19697
标识
DOI:10.1021/acsnano.6c06468
摘要

Electro-Fenton (EF) has emerged as a premier advanced oxidation process in water decontamination, but current EF systems are limited by high-energy-consuming aeration and low oxygen transport efficiency at the electrode-electrolyte interface. Here, we report a flow-through bilayer electrified membrane reactor (BEMR) that integrates in situ oxygen generation and spatial delivery to enable aeration-free EF reaction. In the BEMR, oxygen is continuously generated in situ through the oxygen evolution reaction at the upstream anode and subsequently transported downstream by pressure-driven water flow, establishing a self-sustaining dynamic oxygen shuttling system. Concurrently, an oxygen-philic interfacial microenvironment is constructed at the cathode using a reticular framework with high porosity and strong oxygen affinity, which promotes local oxygen enrichment and reduces boundary layer resistance. This synergistic oxygen regulation transforms the traditional passive diffusion-limited process into an active guided shuttle mechanism, significantly improving interfacial oxygen utilization efficiency and accelerating the generation of reactive oxygen species. The aeration-free EF system achieves rapid and efficient degradation of recalcitrant pollutants, with effects comparable to aeration systems, while reducing total energy consumption by more than 70%. This work advances our understanding of interfacial oxygen regulation in electrochemical systems and promotes the development of energy-efficient EF technologies for sustainable water purification.
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