Related Experiment Video
Updated: Sep 29, 2026

Two-way Valorization of Blast Furnace Slag: Synthesis of Precipitated Calcium Carbonate and Zeolitic Heavy Metal Adsorbent
Published on: February 21, 2017
Mechanistic adsorption-reaction modeling and thermodynamic analysis of metronidazole removal by aluminum
Ahlem Aicha Fakir1,2, Nadjib Drouiche3, Hakim Lounici1,4
1Faculte Des Sciences, Chemistry Department, Akli Mohand Oulhadj University, BP 10010, Bouira, Algeria.
Abstract:
Metronidazole (MNZ) is a nitroimidazole antibiotic widely detected in hospital effluents and surface waters, yet conventional treatment plants are ineffective at removing such micropollutants. This study presents a comprehensive mechanistic framework for MNZ removal by aluminium electrocoagulation (EC), integrating electrochemical oxidation, adsorption onto in situ generated Al(OH)₃ flocs and reactive chlorine chemistry. Batch experiments were conducted at current intensities of from 1.00 to 2.30 A, initial concentrations of 5-50 mg/L and temperatures of 15-40 °C. A unified adsorption-reaction (A-R) model coupling four dynamic reservoirs (aqueous MNZ, adsorbed MNZ, active chlorine and floc mass) was developed and validated against 60 concentration-time observations from four current intensities and fifteen sampling times. Tert-butanol probe experiments combined with DOC mass balance revealed that MNZ elimination proceeds via an apparent oxidative contribution of 42% (35% complete mineralisation, 7% partial oxidation) and 58% adsorptive capture. However, because TBA selectively scavenges •OH radicals and does not efficiently quench reactive chlorine species (HOCl/ClO⁻), these values should be interpreted as operationally estimated apparent contributions that include both •OH- and RCS-mediated pathways. The A-R model achieved good predictive capacity (R2 = 0.996, RMSE = 3.2%) with the lowest corrected Akaike Information Criterion (AICc = 186.9; ΔAICc = + 34.5 vs. the Langmuir-Hinshelwood model, + 51.3 vs. the pseudo-second-order model and + 58.3 vs. the pseudo-first-order model). Independent hold-out validation across current, concentration and temperature domains yielded a combined RMSE of 3.7%, indicating predictive capability beyond the calibration domain. Thermodynamic analysis using an electrochemical Van't Hoff formalism with nonlinear regression yielded ΔH°ads = - 28.5 kJ/mol and β = 1.85 kJ·A⁻1·mol⁻1. β is best regarded as an empirical current-dependent fitting parameter rather than a fully validated physical thermodynamic quantity; its molecular interpretation remains phenomenological pending direct surface characterisation. Energy optimisation revealed a trade-off between cost-efficiency (EE/O = 17.4 kWh/m3/order at 1.50 A, 86% removal) and maximum removal (EE/O = 19.2 kWh/m3/order at 1.98 A, > 90% removal). The lowest EE/O (13.5 kWh/m3/order) was observed at 2.30 A, but this condition required the highest total energy per volume and produced the most sludge. The total operating cost ranged from 2.7 to 3.5 €/m3, with 1.50 A providing the lowest cost. Monte Carlo simulations showed 94% probability of achieving > 85% removal under operational uncertainties, with sensitivity analysis identifying adsorption kinetics (kads, S = 0.89) as the dominant control parameter. While partial mineralisation (35%) and uncharacterised transformation products remain limitations and validation was limited to synthetic solutions in a single laboratory reactor, the A-R model provides a reliable, transferable tool for EC process design and scale-up. The findings contribute to international efforts to develop sustainable treatment technologies for antibiotic-contaminated waters, positioning EC as a technically feasible and predictable option for pharmaceutical removal.
Related Concept Videos
Extraction: Advanced Methods
Coagulation
Adsorption Isotherms I
Voltammetry: Stripping Methods
Anodic Stripping Voltammetry (ASV)
ASV is used to determine metals and metalloids at trace levels. It involves two steps: deposition and stripping. First, a negative potential is applied to the...
Biological Treatment of Effluent and Waste Water
Parameters Affecting Nonlinear Elimination: Zero-Order Input, First-Order Absorption and Two-Compartment Model
When a drug is administered through a constant intravenous infusion and eliminated via nonlinear pharmacokinetics, it follows zero-order input. For example, oral drugs undergo first-order absorption upon administration and are eliminated through nonlinear pharmacokinetics.
In the case of subcutaneously administered drugs,...
