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Abatement of the membrane biofouling: performance of an in-situ integrated bioelectrochemical-ultrafiltration system

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BES-UF 2020-04-23 revised version.docxAccepted version2.36 MBMicrosoft WordView/Open
SI-BES-UF 2020-01-08 revised version.docxSupporting information1.76 MBMicrosoft WordView/Open
Title: Abatement of the membrane biofouling: performance of an in-situ integrated bioelectrochemical-ultrafiltration system
Authors: Xu, L
Graham, NJD
Wei, C
Zhang, L
Yu, W
Item Type: Journal Article
Abstract: The practical applications of membrane-based water treatment techniques are constrained by the problem of membrane fouling. Various studies have revealed that interactions between extracellular polymeric substances (EPS) and the membrane surface determine the extent of irreversible fouling. Herein, we describe a novel bioelectrochemical system (BES) integrated with an ultrafiltration (UF) membrane in order to provide an enhanced antifouling property. It was found that the integrated BES membrane system had a superior performance compared to a conventional (control) UF system, as manifested by a much lower development of transmembrane pressure. The BES significantly reduced microbial viability in the membrane tank and the imposed electrode potential contributed to the degradation of biopolymers, which favored the alleviation of membrane fouling. Notably, the electron transfer between the acclimated microorganisms and the conductive membrane in the BES integrated system exhibited an increasing trend with the operation time, indicating a gradual increase in microbial electrical activity. Correspondingly, the accumulation of extracellular polymeric substances (EPS) on the membrane surface of the BES integrated system showed a substantial decrease compared to the control system, which could be attributed to a series of synergistic effects induced by the BES integration. The differences in the microbial diversity between the control and the BES integrated system revealed the microbial selectivity of the poised potential. Specifically, microbial strains with relatively high EPS production, like the genus of Zoogloea and Methyloversatilis, were reduced significantly in the BES integrated system, while the expression of the electroactive bacteria was promoted, which facilitated extracellular electron transfer (EET) and therefore the bioelectrochemical reactions. Overall, this study has presented a feasible and promising new approach for membrane fouling mitigation during the process of water treatment.
Issue Date: 15-Jul-2020
Date of Acceptance: 25-Apr-2020
URI: http://hdl.handle.net/10044/1/79840
DOI: 10.1016/j.watres.2020.115892
ISSN: 0043-1354
Publisher: Elsevier
Journal / Book Title: Water Research
Volume: 179
Copyright Statement: © 2020 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor/Funder: Commission of the European Communities
Funder's Grant Number: PIIF-GA-2012-328867
Keywords: Bioelectrochemical system
Electroactive bacteria
Electron transfer
Extracellular polymeric substance
Membrane fouling
Ultrafiltration
Biofouling
Biopolymers
Membranes, Artificial
Ultrafiltration
Water Purification
Biopolymers
Membranes, Artificial
Ultrafiltration
Water Purification
Biofouling
Bioelectrochemical system
Electroactive bacteria
Electron transfer
Extracellular polymeric substance
Membrane fouling
Ultrafiltration
Biofouling
Biopolymers
Membranes, Artificial
Ultrafiltration
Water Purification
Environmental Engineering
Publication Status: Published
Conference Place: England
Article Number: ARTN 115892
Online Publication Date: 2020-05-04
Appears in Collections:Civil and Environmental Engineering
Grantham Institute for Climate Change