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Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes.

Publication ,  Journal Article
de Lannoy, C-F; Jassby, D; Gloe, K; Gordon, AD; Wiesner, MR
Published in: Environmental science & technology
March 2013

Electrically conductive polymer-nanocomposite (ECPNC) tight nanofiltration (NF) thin film membranes were demonstrated to have biofilm-preventing capabilities under extreme bacteria and organic material loadings. A simple route to the creation and application of these polyamide-carbon nanotube thin films is also reported. These thin films were characterized with SEM and TEM as well as FTIR to demonstrate that the carbon nanotubes are embedded within the polyamide and form ester bonds with trimesoyl chloride, one of the monomers of polyamide. These polymer nanocomposite thin film materials boast high electrical conductivity (∼400 S/m), good NaCl rejection (>95%), and high water permeability. To demonstrate these membranes' biofouling capabilities, we designed a cross-flow water filtration vessel with insulated electrical leads connecting the ECPNC membranes to an arbitrary waveform generator. In all experiments, conducted in highly bacterially contaminated LB media, flux tests were run until fluxes decreased by 45 ± 3% over initial flux. Biofilm-induced, nonreversible flux decline was observed in all control experiments and a cross-flow rinse with the feed solution failed to induce flux recovery. In contrast, flux decrease for the ECPNC membranes with an electric potential applied to their surface was only caused by deposition of bacteria rather than bacterial attachment, and flux was fully recoverable following a short rinse with the feed solution and no added cleaning agents. The prevention of biofilm formation on the ECPNC membranes was a long-term effect, did not decrease with use, and was highly reproducible.

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Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

March 2013

Volume

47

Issue

6

Start / End Page

2760 / 2768

Related Subject Headings

  • Pseudomonas aeruginosa
  • Polymers
  • Nanocomposites
  • Membranes, Artificial
  • Filtration
  • Equipment Design
  • Environmental Sciences
  • Electrodes
  • Electric Conductivity
  • Biofouling
 

Citation

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de Lannoy, C.-F., Jassby, D., Gloe, K., Gordon, A. D., & Wiesner, M. R. (2013). Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes. Environmental Science & Technology, 47(6), 2760–2768. https://doi.org/10.1021/es3045168
Lannoy, Charles-François de, David Jassby, Katie Gloe, Alexander D. Gordon, and Mark R. Wiesner. “Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes.Environmental Science & Technology 47, no. 6 (March 2013): 2760–68. https://doi.org/10.1021/es3045168.
de Lannoy C-F, Jassby D, Gloe K, Gordon AD, Wiesner MR. Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes. Environmental science & technology. 2013 Mar;47(6):2760–8.
de Lannoy, Charles-François, et al. “Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes.Environmental Science & Technology, vol. 47, no. 6, Mar. 2013, pp. 2760–68. Epmc, doi:10.1021/es3045168.
de Lannoy C-F, Jassby D, Gloe K, Gordon AD, Wiesner MR. Aquatic biofouling prevention by electrically charged nanocomposite polymer thin film membranes. Environmental science & technology. 2013 Mar;47(6):2760–2768.
Journal cover image

Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

March 2013

Volume

47

Issue

6

Start / End Page

2760 / 2768

Related Subject Headings

  • Pseudomonas aeruginosa
  • Polymers
  • Nanocomposites
  • Membranes, Artificial
  • Filtration
  • Equipment Design
  • Environmental Sciences
  • Electrodes
  • Electric Conductivity
  • Biofouling