In Situ ATR-FTIR Analysis of Nalidixic Acid Degradation upon Oxygenation of Fe(II)-Sorbed Ferrihydrite and Maghemite Surfaces

Abstract The mechanisms of the abiotic degradation of antibiotics in redox-dynamic environments, such as aquifer sediments or hyporheic zones, remain poorly understood. This study investigates the transformation of nalidixic acid (NAL), a model quinolone antibiotic, triggered by the dark oxygenation of Fe(II) sorbed onto two (oxyhydr)oxides: nanomaghemite and ferrihydrite. Using in situ ATR-FTIR spectroscopy under continuous flow, we demonstrate that exposing the Fe(II)-sorbed surfaces to dissolved O2 initiates the oxidation of adsorbed NAL over timescales of hours, without requiring light or added strong oxidants as H2O2. Real-time spectral analysis reveals mineral-dependent fates of transformation products. On Fe(II)-sorbed maghemite, significant vibrational shifts indicate the oxidative cleavage of the pyridinic ring, mirroring mechanisms observed in heterogeneous Fenton systems, leading to the accumulation of adsorbed byproducts. Significant degradation of NAL is also observed upon oxygenation of Fe(II)-sorbed ferrihydrite, with a slightly different end-product signal. These findings highlight that the aeration of Fe(II)-bearing minerals is a potent natural pathway driving the deep structural transformation of recalcitrant contaminants during environmental redox cycles.

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Publication Details

Journal
ACS Omega
Published
2026-09-24
DOI
https://doi.org/10.1021/acsomega.6c07545
Primary Topic
Advanced oxidation water treatment
Type
article
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article

In Situ ATR-FTIR Analysis of Nalidixic Acid Degradation upon Oxygenation of Fe(II)-Sorbed Ferrihydrite and Maghemite Surfaces

Alberto Mezzetti, Guillaume Morin, Sylvie Nélieu, Ana Carolina Schuh Frantz et al.
ACS Omega
Advanced oxidation water treatment
article

In Situ ATR-FTIR Analysis of Nalidixic Acid Degradation upon Oxygenation of Fe(II)-Sorbed Ferrihydrite and Maghemite Surfaces

Alberto Mezzetti, Guillaume Morin, Sylvie Nélieu, Ana Carolina Schuh Frantz, Xavier Carrier, Mbolantenaina Rakotomalala Robinson
article en

Abstract

Abstract The mechanisms of the abiotic degradation of antibiotics in redox-dynamic environments, such as aquifer sediments or hyporheic zones, remain poorly understood. This study investigates the transformation of nalidixic acid (NAL), a model quinolone antibiotic, triggered by the dark oxygenation of Fe(II) sorbed onto two (oxyhydr)oxides: nanomaghemite and ferrihydrite. Using in situ ATR-FTIR spectroscopy under continuous flow, we demonstrate that exposing the Fe(II)-sorbed surfaces to dissolved O2 initiates the oxidation of adsorbed NAL over timescales of hours, without requiring light or added strong oxidants as H2O2. Real-time spectral analysis reveals mineral-dependent fates of transformation products. On Fe(II)-sorbed maghemite, significant vibrational shifts indicate the oxidative cleavage of the pyridinic ring, mirroring mechanisms observed in heterogeneous Fenton systems, leading to the accumulation of adsorbed byproducts. Significant degradation of NAL is also observed upon oxygenation of Fe(II)-sorbed ferrihydrite, with a slightly different end-product signal. These findings highlight that the aeration of Fe(II)-bearing minerals is a potent natural pathway driving the deep structural transformation of recalcitrant contaminants during environmental redox cycles.

ACS Omega
Centre National de la Recherche Scientifique (FR), AgroParisTech (FR), Sorbonne Université (FR), Institut National de Recherche pour l'Agriculture, l'Alimentation et l'Environnement (FR), Sorbonne University Abu Dhabi (AE), Université Paris 1 Panthéon-Sorbonne (FR)
Clean water and sanitation
Openalex Percentile: Top 21%
Advanced oxidation water treatment
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In Situ ATR-FTIR Analysis of Nalidixic Acid Degradation upon Oxygenation of Fe(II)-Sorbed Ferrihydrite and Maghemite Surfaces — Alberto Mezzetti, Guillaume Morin, et al. · ACS Omega (2026) | TGRS Research Map | TGRS