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Electrochemical impedance spectroscopy (EIS) reveals the role of microbial fuel cell-ceramic membrane bioreactor (MFC-CMBR): Electricity utilization and membrane fouling

膜污染 结垢 微生物燃料电池 介电谱 陶瓷膜 材料科学 化学工程 胞外聚合物 化学 陶瓷 电极 电化学 复合材料 工程类 生物膜 生物化学 物理化学 生物 细菌 阳极 遗传学
作者
Lutian Wang,Yun Wu,Zhenkun You,Huanzhong Bao,Lianbao Zhang,Jie Wang
出处
期刊:Water Research [Elsevier BV]
卷期号:222: 118854-118854 被引量:26
标识
DOI:10.1016/j.watres.2022.118854
摘要

• The MFC-CMBR with lower internal resistances shows effectively membrane fouling control, low-cost electricity utilization. • Enhancement capacity of electrons migration displayed better microbial activity. • Rct response crucially depend on sludge mixture properties. Ceramic membrane has become a major concern due to creasing cost and competitive efficiency. Microbial fuel cell-ceramic membrane bioreactor (MFC-CMBR) is considered alternative technology for larger-scale industrial application because of its advantages of convenient detecting and control of membrane fouling. However, MFC-CMBR are highly susceptible to membrane fouling and harsh operating requirements in these wastewaters of different compositions. This research critically discusses that electrochemical response in different types of MFC-CMBRs and control of electricity utilization on ceramic membrane fouling. The experimental results indicated that the application of sludge acclimated in coupling system with higher external resistance could ensure that lower costs (electricity utilization and membrane cleaning) provided enough membrane fouling control. The improved performance of MFC-CMBR-1 could be attributed to its enhanced nitrification/denitrification activity and capacity of electrons migration between electrode and sludge mixture. The coupling system alleviated membrane fouling and impedance increasing by improving the characteristics of sludge (increased particle size, decreased adsorption adhesion free energy), EPS (decreased hydrophobicity, molecular weight distribution regulation). And filtration tests showed that roughness and contact angle for the MFC-CMBR tend for better development compared to CMBR, dependent on the changes in the chemical surface groups as a result of electric distribution ratio. In addition, correlation analysis and filtration experiments showed that the extracellular polymer substances (EPS) enhanced the charge transfer resistance (R ct ), and the protein substance in EPS was the main fouling substance when external resistance was close to the internal resistance of MFC. In summary, the low internal resistance of ceramic membrane lead to obvious better fouling control and electricity utilization than organic membrane, and the paper provides insight into the MFC-CMBR systems for a wide range of detecting membrane fouling and applications of membrane fouling mitigation.
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