PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 17, 2026ChemElectroChem0 citationsOpen Access

Optimizing Microbial Fuel Cell Efficiency Through a Designed Electrogenic Consortium to Remove Alkylbenzenes

View Full Paper
JSJoão Carlos de SouzaUniversidade de Ribeirão PretoAZAna Clara Bonizol ZaniUniversidade de Ribeirão PretoVRValéria ReginattoUniversidade de Ribeirão Preto

Key Points

  • This research aims to enhance the biodegradation of alkylbenzenes using a novel electrogenic microbial consortium in microbial fuel cells.
  • Developed a microbial fuel cell with a novel electrogenic consortium from mangrove sediments.
  • Progressively acclimated the consortium to efficiently biodegrade ethylbenzene and xylenes while producing electricity.
  • Conducted electrochemical and microscopic characterizations to analyze performance and biofilm properties.
  • Achieved a maximum voltage of 520.0 ± 15.7 mV and a power density of 63.4 ± 5.3 mW m−2.
  • Removed 97.2 ± 1.9% of xylenes and 89.4 ± 7.5% of ethylbenzene over 120 hours.
  • Demonstrated enhanced electrochemical performance through improved extracellular electron transfer and increased biofilm conductivity.

Abstract

Developing sustainable remediation strategies to biodegrade alkylbenzenes remains challenging. We have developed a microbial fuel cell (MFC) based on a novel electrogenic microbial consortium derived from mangrove sediments. The consortium was progressively acclimated to codegrade ethylbenzene and xylenes (EXs) while generating bioelectricity, achieving a maximum voltage of 520.0 ± 15.7 mV and a power density of 63.4 ± 5.3 mW m −2 . At the end of the MFC operation (120 h), the biofilm preferentially biodegraded EXs over acetate, removing 97.2 ± 1.9% Xs and 89.4 ± 7.5% ethylbenzene were observed, and sustained electric output was maintained. Electrochemical analyses revealed enhanced redox activity, reduced resistance to charge transfer, and increased electrochemically active surface area, which indicated that acclimation improved extracellular electron transfer. Microscopic, microbial and electrochemical characterizations confirmed the formation of a dense and conductive biofilm under EXs feeding, composed mainly by Acetobacterium , Pseudochrobactrum , and Acinetobacter , while simultaneously generating electricity, with H 2 as intermediate of electron transfer. Overall, the results demonstrate that microbial acclimation enhances electrochemical performance and alkylbenzene biodegradation, highlighting that MFCs are potential integrated platforms for remediating aromatic hydrocarbon while recovering energy.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Souza et al. (2026) studied this question.

synapsesocial.com/papers/6a095bdd7880e6d24efe1c0ahttps://doi.org/10.1002/celc.70232
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Degradation and inhibition kinetics of phenanthrene by Alcaligenes ammonioxydans, [VITRPS2] strain isolated from petroleum-contaminated soil2024 · 6 citations
  2. 2Contribution of acetate to butyrate formation by human faecal bacteria2004 · 490 citations
  3. 3From cells to power cells: harnessing bacterial electron transport for microbial fuel cells (MFCs)2024 · 23 citations
  4. 4Sulfurovum aggregans sp. nov., a hydrogen-oxidizing, thiosulfate-reducing chemolithoautotroph within the Epsilonproteobacteria isolated from a deep-sea hydrothermal vent chimney, and an emended description of the genus Sulfurovum2014 · 116 citations
  5. 5Co-metabolism for enhanced phenol degradation and bioelectricity generation in microbial fuel cell2020 · 82 citations