Unveiling the Reactive Species and Synergistic Mechanism in Nitrogen-Doped Sea Buckthorn Carbon-Catalyzed Ozonation for Antibiotic Removal

Antibiotic residues in aquatic environments exhibit high environmental persistence and pose potential ecological risks, highlighting the need for efficient and low-cost advanced treatment technologies. In this study, nitrogen-doped sea buckthorn wood-derived carbon catalysts (NSBC-x) were prepared from sea buckthorn wood waste through a ball-milling–nitrogen-doping–pyrolysis strategy and applied to catalytic ozonation for tetracycline (TTCH) degradation. The pyrolysis temperature significantly affected the catalytic performance of the materials, with NSBC-800 exhibiting the highest activity. Under an initial TTCH concentration of 50 ppm, a catalyst dosage of 0.10 g L−1, and an ozone flow rate of 0.10 L min−1, NSBC-800 achieved a TTCH removal efficiency of 94.72%. Reactive-species quenching experiments indicated that superoxide radicals (O2·−) and singlet oxygen (1O2) were the predominant reactive species in the system. The superior catalytic performance of NSBC-800 may be attributed to the synergistic effects of nitrogen-containing active sites, structural defects, accessible pore channels, and a moderately graphitized carbon framework, which collectively facilitate ozone adsorption, interfacial electron transfer, and reactive oxygen species (ROS) generation.

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Publication Details

Journal
Catalysts
Published
2026-09-29
DOI
https://doi.org/10.3390/catal16100878
Primary Topic
Advanced oxidation water treatment
Type
article
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article

Unveiling the Reactive Species and Synergistic Mechanism in Nitrogen-Doped Sea Buckthorn Carbon-Catalyzed Ozonation for Antibiotic Removal

Hao Ni, Shaopo Deng, Jingwen Min, Huiling Hao et al.
Catalysts
Advanced oxidation water treatment
article

Unveiling the Reactive Species and Synergistic Mechanism in Nitrogen-Doped Sea Buckthorn Carbon-Catalyzed Ozonation for Antibiotic Removal

Hao Ni, Shaopo Deng, Jingwen Min, Huiling Hao, Shihai Cao, Ming Zhang, Mei Li
article en

Abstract

Antibiotic residues in aquatic environments exhibit high environmental persistence and pose potential ecological risks, highlighting the need for efficient and low-cost advanced treatment technologies. In this study, nitrogen-doped sea buckthorn wood-derived carbon catalysts (NSBC-x) were prepared from sea buckthorn wood waste through a ball-milling–nitrogen-doping–pyrolysis strategy and applied to catalytic ozonation for tetracycline (TTCH) degradation. The pyrolysis temperature significantly affected the catalytic performance of the materials, with NSBC-800 exhibiting the highest activity. Under an initial TTCH concentration of 50 ppm, a catalyst dosage of 0.10 g L−1, and an ozone flow rate of 0.10 L min−1, NSBC-800 achieved a TTCH removal efficiency of 94.72%. Reactive-species quenching experiments indicated that superoxide radicals (O2·−) and singlet oxygen (1O2) were the predominant reactive species in the system. The superior catalytic performance of NSBC-800 may be attributed to the synergistic effects of nitrogen-containing active sites, structural defects, accessible pore channels, and a moderately graphitized carbon framework, which collectively facilitate ozone adsorption, interfacial electron transfer, and reactive oxygen species (ROS) generation.

CatalystsVol. 16(10)
Nanjing Forestry University (CN), Ministry of Ecology and Environment (CN), Nanjing Institute of Technology (CN), Nanjing Institute of Environmental Sciences (CN)
Life below water
Openalex Percentile: Top 21%
Advanced oxidation water treatment
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Unveiling the Reactive Species and Synergistic Mechanism in Nitrogen-Doped Sea Buckthorn Carbon-Catalyzed Ozonation for Antibiotic Removal — Hao Ni, Shaopo Deng, et al. · Catalysts (2026) | TGRS Research Map | TGRS