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Updated: Dec 25, 2025

Electrochemically and Bioelectrochemically Induced Ammonium Recovery
Published on: January 22, 2015
Coupling anodic oxidation, biosorption and alternating current as alternative for wastewater purification
Amina Othmani1, Aida Kesraoui2, HaneneAkrout3
1University of Sousse, Laboratory of Energy and des Materials (LabEM): LR11ES34, Higher School of Science and Technology of Hammam Sousse, Tunisia; Faculty of Sciences of Monastir (Monastir University), Tunisia.
This study enhances anode stability for wastewater treatment using a novel coupling process. The combined electrochemical oxidation and biosorption method effectively removes pollutants and allows water reuse.
Area of Science:
- Environmental Chemistry
- Electrochemistry
- Materials Science
Background:
- Anodic oxidation is effective for refractory effluent treatment, but anode stability is crucial.
- Expensive alternatives exist for enhancing anode stability.
- A simple, cost-effective method is needed to improve anode performance.
Purpose of the Study:
- To enhance the stability of stainless steel/lead dioxide (SS/PbO2) anodes.
- To evaluate the performance of these anodes in treating methylene blue and industrial textile wastewater.
- To investigate a novel coupling process combining electrochemical oxidation with biosorption.
Main Methods:
- Electrodeposition of SS/PbO2 anodes using pulsed current.
- Coupling electrochemical oxidation with biosorption using Luffa cylindrica.
- Optimization of the coupling process for colored and industrial wastewater treatment.
- Analysis using Atomic Absorption Spectroscopy (AAS) and Liquid Chromatography-Mass Spectrometry (LC/MS).
Main Results:
- The coupling process achieved 98.7% methylene blue removal (60 min, AC) and 80.02% (120 min, DC).
- Anodic oxidation alone removed 62.84% methylene blue (120 min, AC) and 46.87% (180 min, DC).
- Chemical Oxygen Demand (COD) removal reached 91.32% (AC) and 75.48% (DC) with the coupling process.
- Lead ion (Pb2+) levels were within permissible standards.
- Generated by-products were identified, and treated water proved suitable for reuse via germination tests.
Conclusions:
- The coupling process significantly enhances wastewater treatment efficiency and speed compared to anodic oxidation alone.
- Alternating current (AC) improves both speed and efficiency in both processes.
- The developed method offers a stable and effective solution for refractory effluent treatment, enabling water reuse.
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