Fe3O4@CQDs/dielectric barrier discharge plasma coupled system for enrofloxacin degradation: efficiency, influencing factors, and synergistic mechanism
作者:Jie Wang, Jiaqi Dong, Kai Zhang, Shikun Liu, Xingguo Liu · 发表于:Chemical Engineering Journal Advances · 年份:2025 · DOI:10.1016/j.ceja.2025.100892 · 被引用次数:5 · 研究领域:Semiconductor materials and devices、Environmental remediation with nanomaterials、Analytical chemistry methods development
• Fe 3 O 4 @CQDs composite exhibits superior photocatalytic performance. • Fe 3 O 4 @CQDs/DBD coupled system shows a synergistic effect. • The coupled system has strong anti-interference against pH, ions, humic acid. • ENR degrades via e⁻, •OH, • O 2 − , 1 O 2 , ONOO⁻, H 2 O 2 , O 3 etc., through defluorination, with less toxic intermediates. The escalating residue of enrofloxacin (ENR) in aquatic environments exacerbates antibiotic resistance, necessitating efficient degradation technologies. Herein, a Fe 3 O 4 @CQDs/dielectric barrier discharge (DBD) plasma system was constructed to degrade ENR, with a focus on unraveling the synergistic mechanism. Fe 3 O 4 @CQDs are synthesized via the hydrothermal method and exhibit enhanced specific surface area, abundant surface functional groups (hydroxyl, carbonyl), and efficient Fe(III)/Fe(II) redox cycling performance. Optimal degradation of ENR was achieved at 20 kV discharge voltage, 0.3 g/L Fe 3 O 4 @CQDs dosage, with a 95% removal efficiency at 30 min and a synergistic factor of 2.66. The system showed robust anti-interference against pH fluctuation, Cl⁻, CO 3 2 − , and humic acid. Degradation intermediates and density functional theory analysis revealed degradation pathways (defluorination, decarboxylation, demethylation) with intermediates of reduced toxicity. •OH, • O 2 − , 1 O 2 , ONOO⁻, H 2 O 2 , and O 3 were confirmed key reactive species with e⁻ as the initiator. The primary synergistic mechanisms of Fe 3 O 4 @CQDs/DBD in...