AI summary

70% confidence

Researchers developed a method to immobilize anode-attached microbes in a microbial fuel cell using a latex coating, which did not significantly affect their exoelectrogenic activity.

Generated by MESSAI extraction pipeline · review against source PDF

Literature priors

Generic MECRepresentative model
Click to animate flow
loading 3D model…

Representative MEC — matched on the paper’s system type only, not its reactor or geometry.

Distribution

Reported parameters

The author’s reported value (▼) sits on top of the literature distribution from MESS-Parameters. Values outside the band are flagged as outliers.

Coulombic efficiency1%

22 extracted values

View extracted values

Open in lab for full controls, parameter editing, and template overlays.

Open in lab →

What they did

System
MEC

What worked

No outcome metrics extracted yet.

Abstract

Abstract Current-generating (exoelectrogenic) bacteria in bioelectrochemical systems (BESs) may not be culturable using standard in vitro agar-plating techniques, making isolation of new microbes a challenge. More in vivo like conditions are needed where bacteria can be grown and directly isolated on an electrode. While colonies can be developed from single cells on an electrode, the cells must be immobilized after being placed on the surface. Here we present a proof-of-concept immobilization approach that allows exoelectrogenic activity of cells on an electrode based on applying a layer of latex to hold bacteria on surfaces. The effectiveness of this procedure to immobilize particles was first demonstrated using fluorescent microspheres as bacterial analogs. The latex coating was then shown to not substantially affect the exoelectrogenic activity of well-developed anode biofilms in two different systems. A single layer of airbrushed coating did not reduce the voltage produced by a biofilm in a microbial fuel cell (MFC), and more easily applied dip-and-blot coating reduced voltage by only 11% in a microbial electrolysis cell (MEC). This latex immobilization procedure will enable future testing of single cells for exoelectrogenic activity on electrodes in BESs.

Key findings

  • The latex coating effectively immobilized fluorescent microspheres as bacterial analogs.
  • The coating did not substantially affect the exoelectrogenic activity of well-developed anode biofilms in two different systems.
  • A single layer of airbrushed coating did not reduce the voltage produced by a biofilm in a microbial fuel cell, while a dip-and-blot coating reduced voltage by 11%.

Keywords

Microbial fuel cellMicrobial electrolysis cellBiofilmAnodeBacteriaCoating

Identifiers

Journal
AMB Express
Year
2012