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Constructing zwitterionic polymer brush layer to enhance gravity-driven membrane performance by governing biofilm formation

  • Caihong Liu*
  • , Dan Song
  • , Wenjuan Zhang
  • , Qiang He
  • , Xiaoliu Huangfu
  • , Shaofang Sun
  • , Zhiqiang Sun
  • , Wei Cheng
  • , Jun Ma
  • *Corresponding author for this work
  • Chongqing University
  • Tianjin Chengjian University
  • University of Jinan
  • CAS - Research Center for Eco-Environmental Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

In this study, zwitterionic polymer brushes with controlled architecture were grafted on the surface of gravity-driven membrane (GDM) via surface-initiated reaction to impart antifouling property. A variety of membrane characterization techniques were conducted to demonstrate the successful functionalization of zwitterionic polymers on PVDF hollow fiber membrane. The membrane underwent 90 min of reaction time possessing strong hydrophilicity and high permeability was determined as the optimal modified membrane. Long-term GDM dynamic fouling experiments operated for 30 days using sewage wastewater as feed solution indicated zwitterionic polymer modified membrane exhibit excellent membrane fouling resistance thus enhanced stable flux. Confocal laser scanning microscopy (CLSM) imaging implied that zwitterionic polymer modification significantly inhibit the adsorption of extracellular polymeric substances (EPS) which dominates fouling propensity, resulting in the formation of a thin biofilm with high porosity under synthetic functions of foulants deposition and microbial activities. Interfacial free energy prediction affirmed the presence of zwitterionic functional layer on membrane surface could substantially decrease the interactions (e.g., electrostatic attractions and hydrophobic effects) between membrane and foulants, thereby reduced flux decline and high stable flux. Our study suggests surface hydrophilic functionalization shows promising potential for improving the performance of ultra-low pressure filtration.

Original languageEnglish
Article number115181
JournalWater Research
Volume168
DOIs
StatePublished - 1 Jan 2020

Keywords

  • Antifouling
  • Biofilm
  • Flux stabilization
  • Gravity-driven membrane
  • Zwitterionic polymers

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