Environment and Natural Materials Research Institute (ENMRI), City of Scientific Research and Technological Applications (SRTA-City), New Borg El-Arab City, Alexandria, 21934, Egypt.
Environmental Engineering Department, Egypt-Japan University of Science and Technology (E-JUST), New Borg El-Arab City, Alexandria, 21934, Egypt.
Environ Sci Pollut Res Int. 2023 Aug;30(37):87449-87464. doi: 10.1007/s11356-023-28510-z. Epub 2023 Jul 8.
Pure zero-valent iron (ZVI) was supported on silica and starch to enhance the activation of persulfate (PS) for tetracycline degradation. The synthesized catalysts were characterized by microscopic and spectroscopic methods to assess their physical and chemical properties. High tetracycline removal (67.55%) occurred using silica modified ZVI (ZVI-Si)/PS system due to the improved hydrophilicity and colloidal stability of ZVI-Si. Incorporating light into the ZVI-Si/PS system improved the degradation performance by 9.45%. Efficient degradation efficiencies were recorded at pH 3-7. The optimum operating parameters determined by the response surface methodology were PS concentration of 0.22 mM, initial tetracycline concentration of 10 mg/L, and ZVI-Si dose of 0.46 g/L, respectively. The rate of tetracycline degradation declined with increasing tetracycline concentration. The degradation efficiencies of tetracycline were 77%, 76.4%, 75.7%, 74.5%, and 73.75% in five repetitive runs at pH 7, 20 mg/L tetracycline concentration, 0.5 g/L ZVI-Si dose, and 0.1 mM PS concentration. The degradation mechanism was explained, and sulfate radicals were the principal reactive oxygen species. The degradation pathway was proposed based on liquid chromatography-mass spectroscopy. Tetracycline degradation was favorable in distilled and tap water. The ubiquitous presence of inorganic ions and dissolved organic matter in the lake, drain, and seawater matrices interfered with the tetracycline degradation. The high reactivity, degradation performance, stability, and reusability of ZVI-Si substantiate the potential practical application of this material for the degradation of real industrial effluents.
将纯零价铁(ZVI)负载在硅砂和淀粉上以增强过硫酸盐(PS)对四环素的降解作用。通过微观和光谱方法对合成的催化剂进行了表征,以评估其物理和化学性质。由于 ZVI-Si 的亲水性和胶体稳定性提高,使用硅砂修饰的 ZVI(ZVI-Si)/PS 系统实现了高四环素去除率(67.55%)。将光引入 ZVI-Si/PS 系统可将降解性能提高 9.45%。在 pH 3-7 下记录到有效的降解效率。响应面法确定的最佳操作参数分别为 PS 浓度为 0.22 mM,初始四环素浓度为 10 mg/L,ZVI-Si 剂量为 0.46 g/L。随着四环素浓度的增加,四环素的降解速率下降。在 pH 7、20 mg/L 四环素浓度、0.5 g/L ZVI-Si 剂量和 0.1 mM PS 浓度下,五次重复运行的四环素降解效率分别为 77%、76.4%、75.7%、74.5%和 73.75%。解释了降解机制,硫酸盐自由基是主要的活性氧物质。基于液相色谱-质谱提出了降解途径。在蒸馏水和自来水中,四环素的降解是有利的。在湖泊、排水沟和海水中基质中,无机离子和溶解有机物的普遍存在会干扰四环素的降解。ZVI-Si 的高反应性、降解性能、稳定性和可重复使用性证明了该材料在降解实际工业废水方面具有潜在的实际应用。