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March 25, 2026Biosensors0 citationsOpen Access

Femtosecond Laser Micropore-Enhanced Miniaturised PCB-Based Microbial Fuel Cell Biosensor for Toxicity Detection

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TQTong QiChinese Academy of SciencesZLZhongxian LiChinese Academy of SciencesHSHebin SunChinese Academy of Sciences

Key Points

  • The aim is to develop a miniaturised biosensor for detecting toxicity using a microbial fuel cell.
  • Fabricated a single-chamber microbial fuel cell on a printed circuit board.
  • Used femtosecond laser processing to create 40 μm micropores on the anode surface.
  • Utilised Rhizobium rosettiformans W3 as the anode microorganism.
  • Tested sensor performance using a formaldehyde solution.
  • Micropores improved the anode's surface area and microbial adhesion.
  • Formaldehyde at 0.1% concentration significantly decreased sensor output power.

Abstract

This study presents a low-cost, small-scale single-chamber microbial fuel cell (MFC) toxicity biosensor fabricated on a printed circuit board (PCB) and a 3D-printed chamber with a volume of 120 μL. The anode consists of a screen-printed carbon electrode on the PCB, while the air cathode is a carbon paper electrode. To address poor adhesion of microorganisms to the smooth anode surface, femtosecond laser processing was used to fabricate a micropore array with 40 μm pores on the electrode. This method can create micropores on the anode surface without damaging the screen-printed electrodes, the PCB substrate, or the pads. These micropores increase the anode’s surface area and hydrophilicity, allowing more microbial coatings to firmly adhere to its surface. In this study, the MFC utilised Rhizobium rosettiformans W3, extracted from activated sludge at a wastewater treatment plant, as the anode microorganism. Its aerobic nature simplifies the design of MFCs, enabling a single-chamber structure and miniaturisation. Using formaldehyde solution as a toxicity sample to test the biosensor’s performance, a 0.1% concentration significantly reduced the sensor’s output power.

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Cite This Study

Qi et al. (2026) studied this question.

synapsesocial.com/papers/69c37afeb34aaaeb1a67cfa7https://doi.org/10.3390/bios16030179
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