Related Experiment Video
Updated: Jan 31, 2026

Waste Water Derived Electroactive Microbial Biofilms: Growth, Maintenance, and Basic Characterization
Published on: December 29, 2013
Influence of synthesis temperature of eggshell-derived hydroxyapatite on biofilm formation and microbial fuel cell
1Department of Mechanical and Electromechanical Engineering, National I Lan University, Yilan, Taiwan; Department of Biotechnology, Kalasalingam Academy of Research and Education, Virudhunagar, India.
Abstract:
Microbial fuel cells (MFCs) enable simultaneous wastewater treatment and bioelectricity generation, but their performance is often constrained by poor bacterial adhesion and slow anode electron transfer. Hydroxyapatite (HA) can address these limitations; however, most studies rely on commercial HA and rarely examine biowaste-derived sources or synthesis-route effects. In this study, eggshell-derived HA was synthesized via room-temperature precipitation (CHP) and hydrothermal treatment at 250 °C for 3 h (CHH), then blended with carbon to fabricate composite anodes. Dual-chamber MFCs inoculated with Shewanella putrefaciens were evaluated using electrochemical analyses (CV, EIS, polarization) and biofilm characterization (CFU counts, crystal violet staining, SEM). CHH achieved a peak power density of 0.164 W m-2, approximately 167% higher than bare carbon and 23-33% higher than carbon and CHP. CHP exhibited slightly lower peak power but superior sustained output over a wider current-density range, attributed to its low-crystallinity structure and rapid early colonization. The results demonstrate that HA nanostructure, governed by synthesis route, directly influences biofilm formation and electron transfer. Overall, eggshell-derived HA anodes significantly enhance MFC performance, establishing a clear synthesis-nanostructure-biofilm-performance relationship.
Related Concept Videos
Factors Influencing Microbial Growth: Temperature
Batteries and Fuel Cells
Factors Influencing Microbial Growth: pH
Factors Influencing Microbial Growth: Osmolarity
Physical Methods for Controlling Microbial Growth: Temperature
Synthesis and Decomposition Reactions

