TY - JOUR
T1 - Enhanced degradation kinetics of antibiotic-containing medical wastewater via microbubble-enhanced plasma
T2 - mechanistic insights and systematic evaluation
AU - Liu, Chenyu
AU - Yuan, Shuai
AU - Wang, Xiaoran
AU - Zhu, Mengying
AU - Li, Tianyu
AU - Gan, Dingwei
AU - Zhou, Rusen
AU - Sun, Jing
AU - Zhou, Renwu
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/9
Y1 - 2026/9/9
N2 - The pervasive contamination of aquatic environments by pharmaceutical residues, particularly antibiotics, necessitates the development of efficient and sustainable advanced oxidation technologies. Here, an integrated plasma-microbubble system was developed by coupling atmospheric-pressure dielectric barrier discharge (DBD) with a Venturi-based microbubble generator. With intensified gas-liquid interfacial interactions, the integrated system achieved 99.5% degradation of tetracycline (TC) (100 mg/L) within 10 min, corresponding to a 47.4% enhancement relative to DBD plasma alone. The introduction of microbubbles elevated the degradation performance of air discharge to a level approaching that of pure oxygen plasma, underscoring the efficacy of microbubble integration. Combined analysis of discharge products and scavenger experiments substantiated the enhanced interfacial mass transfer and highlighted O2− and ·OH as the key reactive species governing degradation. Density functional theory (DFT) calculations combined with liquid chromatograph mass spectrometer (LC-MS) analysis elucidated transformation pathways at the molecular level. Furthermore, antibacterial assays and quantitative structure - activity relationship (QSAR) modeling confirmed a substantial reduction in biological activity and ecotoxicological risk following treatment. By integrating interfacial regulation with systematic mechanistic and toxicity assessment, this work advances the rational design of energy-efficient multiphase plasma reactors.
AB - The pervasive contamination of aquatic environments by pharmaceutical residues, particularly antibiotics, necessitates the development of efficient and sustainable advanced oxidation technologies. Here, an integrated plasma-microbubble system was developed by coupling atmospheric-pressure dielectric barrier discharge (DBD) with a Venturi-based microbubble generator. With intensified gas-liquid interfacial interactions, the integrated system achieved 99.5% degradation of tetracycline (TC) (100 mg/L) within 10 min, corresponding to a 47.4% enhancement relative to DBD plasma alone. The introduction of microbubbles elevated the degradation performance of air discharge to a level approaching that of pure oxygen plasma, underscoring the efficacy of microbubble integration. Combined analysis of discharge products and scavenger experiments substantiated the enhanced interfacial mass transfer and highlighted O2− and ·OH as the key reactive species governing degradation. Density functional theory (DFT) calculations combined with liquid chromatograph mass spectrometer (LC-MS) analysis elucidated transformation pathways at the molecular level. Furthermore, antibacterial assays and quantitative structure - activity relationship (QSAR) modeling confirmed a substantial reduction in biological activity and ecotoxicological risk following treatment. By integrating interfacial regulation with systematic mechanistic and toxicity assessment, this work advances the rational design of energy-efficient multiphase plasma reactors.
KW - Atmospheric pressure plasma
KW - Gas-liquid mass transfer
KW - Microbubbles
KW - Tetracycline degradation
KW - Toxicity assessment
UR - https://www.scopus.com/pages/publications/105039179546
U2 - 10.1016/j.seppur.2026.138444
DO - 10.1016/j.seppur.2026.138444
M3 - 文章
AN - SCOPUS:105039179546
SN - 1383-5866
VL - 400
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 138444
ER -