{"title":"Uncovering the neglected feedback of accumulated polyphenol toward self-enhanced electro-polymerization.","authors":"Yang Yu, Peng Wang, Hetao Liu, Zewen Wang, Xian Pan, Ruilei Wang, Huachang Jin, Qian Li, Yingtang Zhou, Dongzhi Chen","doi":"10.1016/j.watres.2026.126285","DOIUrl":null,"url":null,"abstract":"<p><p>Electro-polymerization has emerged as a promising wastewater treatment process due to the merits of zero CO<sub>2</sub> emission, little chemical/energy input, and resource recovery. However, the counterreaction of surface-adsorbed polymer toward the subsequent electro-polymerization remains indeterminate. Herein, we tried to explore the neglected feedback of surface-adsorbed polymer toward electro-polymerization. We demonstrated that the generated polyphenol gradually accumulated onto the MoO<sub>2</sub>-based electroactive membrane, which in situ established an interfacial hydrophobicity microenvironment. This drove the formation of Mo(Ⅵ), with its steady-state concentration elevated by two orders of magnitude, and in turn promoted the phenoxy radical generation, finally triggering an unexpected self-enhanced electro-polymerization. Consequently, an over 100% electronic utilization efficiency, which was almost unrealizable in the conventional electro-oxidation system, was obtained. In addition, the surface-covered polyphenol could be recovered by a facile polarity reversal method, maximizing net profit of 53.9 ¥·m<sup>-3</sup>. These findings shed light on the underlying potential interaction between the surface-covered polymer and the electrode.</p>","PeriodicalId":443,"journal":{"name":"Water Research","volume":"303 ","pages":"126285"},"PeriodicalIF":12.8000,"publicationDate":"2026-09-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Water Research","FirstCategoryId":"93","ListUrlMain":"https://doi.org/10.1016/j.watres.2026.126285","RegionNum":1,"RegionCategory":"环境科学与生态学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"2026/6/15 0:00:00","PubModel":"Epub","JCR":"Q1","JCRName":"ENGINEERING, ENVIRONMENTAL","Score":null,"Total":0}
引用次数: 0
Abstract
Electro-polymerization has emerged as a promising wastewater treatment process due to the merits of zero CO2 emission, little chemical/energy input, and resource recovery. However, the counterreaction of surface-adsorbed polymer toward the subsequent electro-polymerization remains indeterminate. Herein, we tried to explore the neglected feedback of surface-adsorbed polymer toward electro-polymerization. We demonstrated that the generated polyphenol gradually accumulated onto the MoO2-based electroactive membrane, which in situ established an interfacial hydrophobicity microenvironment. This drove the formation of Mo(Ⅵ), with its steady-state concentration elevated by two orders of magnitude, and in turn promoted the phenoxy radical generation, finally triggering an unexpected self-enhanced electro-polymerization. Consequently, an over 100% electronic utilization efficiency, which was almost unrealizable in the conventional electro-oxidation system, was obtained. In addition, the surface-covered polyphenol could be recovered by a facile polarity reversal method, maximizing net profit of 53.9 ¥·m-3. These findings shed light on the underlying potential interaction between the surface-covered polymer and the electrode.
期刊介绍:
Water Research, along with its open access companion journal Water Research X, serves as a platform for publishing original research papers covering various aspects of the science and technology related to the anthropogenic water cycle, water quality, and its management worldwide. The audience targeted by the journal comprises biologists, chemical engineers, chemists, civil engineers, environmental engineers, limnologists, and microbiologists. The scope of the journal include:
•Treatment processes for water and wastewaters (municipal, agricultural, industrial, and on-site treatment), including resource recovery and residuals management;
•Urban hydrology including sewer systems, stormwater management, and green infrastructure;
•Drinking water treatment and distribution;
•Potable and non-potable water reuse;
•Sanitation, public health, and risk assessment;
•Anaerobic digestion, solid and hazardous waste management, including source characterization and the effects and control of leachates and gaseous emissions;
•Contaminants (chemical, microbial, anthropogenic particles such as nanoparticles or microplastics) and related water quality sensing, monitoring, fate, and assessment;
•Anthropogenic impacts on inland, tidal, coastal and urban waters, focusing on surface and ground waters, and point and non-point sources of pollution;
•Environmental restoration, linked to surface water, groundwater and groundwater remediation;
•Analysis of the interfaces between sediments and water, and between water and atmosphere, focusing specifically on anthropogenic impacts;
•Mathematical modelling, systems analysis, machine learning, and beneficial use of big data related to the anthropogenic water cycle;
•Socio-economic, policy, and regulations studies.