College of Visual Arts, Changchun Sci-Tech University, Changchun 130600, China.
School of Materials Science and Engineering, Changchun University of Science and Technology, Changchun 130022, China.
Molecules. 2024 Aug 15;29(16):3875. doi: 10.3390/molecules29163875.
Tetracycline (TC) contamination in water is one of the key issues in global environmental protection, and traditional water treatment methods are difficult to remove antibiotic pollutants.Therefore, efficient and environmentally friendly treatment technologies are urgently needed. In this study, activated persulfate (PS) using a biochar-loaded nano zero-valent iron (BC-nZVI) advanced oxidation system was used to investigate the degradation effect, influencing factors, and mechanism of TC. BC-nZVI was prepared using the liquid-phase reduction method, and its structure and properties were analyzed by various characterization means. The results showed that nZVI was uniformly distributed on the surface or in the pores of BC, forming a stable complex. Degradation experiments showed that the BC-nZVI/PS system could degrade TC up to 99.57% under optimal conditions. The experiments under different conditions revealed that the iron-carbon ratio, dosing amount, PS concentration, and pH value all affected the degradation efficiency. Free radical burst and electron paramagnetic resonance (EPR) experiments confirmed the dominant roles of hydroxyl and sulfate radicals in the degradation process, and LC-MS experiments revealed the multi-step reaction process of TC degradation. This study provides a scientific basis for the efficient treatment of TC pollution in water.
四环素(TC)在水中的污染是全球环境保护的关键问题之一,传统的水处理方法难以去除抗生素污染物。因此,迫切需要高效且环保的处理技术。本研究使用负载纳米零价铁的生物炭活化过硫酸盐(BC-nZVI/PS)高级氧化体系来研究 TC 的降解效果、影响因素和机制。通过各种表征手段分析了 BC-nZVI 的结构和性质,表明 nZVI 均匀分布在 BC 的表面或孔中,形成了稳定的复合物。降解实验表明,在最佳条件下,BC-nZVI/PS 体系可将 TC 降解至 99.57%。不同条件下的实验表明,铁碳比、投加量、PS 浓度和 pH 值都会影响降解效率。自由基爆发和电子顺磁共振(EPR)实验证实了羟基和硫酸根自由基在降解过程中的主导作用,LC-MS 实验揭示了 TC 降解的多步反应过程。本研究为水中 TC 污染的高效处理提供了科学依据。