Electrochemical Bacterial Enrichment from Natural Seawater and Its Implications in Biocorrosion of Stainless-Steel Electrodes
School authors:
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Gonzalo Ernesto Pizarro
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Magdalena Marta Walczak
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Ignacio Tomas Vargas
External authors:
  • Maria Jose De la Fuente ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Leslie K. Daille ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Rodrigo De la Iglesia ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Magdalena Walczak ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Francisco Armijo ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Maria Jose De la Fuente ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Rodrigo De la Iglesia ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
  • Francisco Armijo ( Pontificia Universidad Catolica de Chile , Marine Energy Res & Innovat Ctr MERIC )
Abstract:

Microbial electrochemical technologies have revealed the opportunity of electrochemical enrichment for specific bacterial groups that are able to catalyze reactions of interest. However, there are unsolved challenges towards their application under aggressive environmental conditions, such as in the sea. This study demonstrates the impact of surface electrochemical potential on community composition and its corrosivity. Electrochemical bacterial enrichment was successfully carried out in natural seawater without nutrient amendments. Experiments were carried out for ten days of exposure in a closed-flow system over 316L stainless steel electrodes under three different poised potentials (-150 mV, +100 mV, and +310 mV vs. Ag/AgCl). Weight loss and atomic force microscopy showed a significant difference in corrosion when +310 mV (vs. Ag/AgCl) was applied in comparison to that produced under the other tested potentials (and an unpoised control). Bacterial community analysis conducted using 16S rRNA gene profiles showed that poised potentials are more positive as +310 mV (vs. Ag/AgCl) resulted in strong enrichment for Rhodobacteraceae and Sulfitobacter. Hence, even though significant enrichment of the known electrochemically active bacteria from the Rhodobacteraceae family was accomplished, the resultant bacterial community could accelerate pitting corrosion in 316 L stainless steel, thereby compromising the durability of the electrodes and the microbial electrochemical technologies.

UT WOS:000539277000119
Number of Citations 9
Type
Pages
ISSUE 10
Volume 13
Month of Publication MAY
Year of Publication 2020
DOI https://doi.org/10.3390/ma13102327
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