Public Works Engineering Department, Faculty of Engineering, Mansoura University, Mansoura, 35516, Egypt.
J Environ Manage. 2024 May;359:120972. doi: 10.1016/j.jenvman.2024.120972. Epub 2024 Apr 27.
The presence of levofloxacin (LEV) in aqueous solutions can pose health risks to humans, have adverse effects on aquatic organisms and ecosystems, and contribute to the development of antibiotic-resistant bacteria. This study aims to investigate the feasibility of using electrocoagulation residuals (ECRs) as a heterogeneous catalyst in the electro-Fenton process for degrading LEV. By combining electrocoagulation residuals with sodium alginate, ECRs-alginate beads were synthesized as a heterogeneous electro-Fenton composite. The response surface method was employed to investigate the optimization and influence of various operating parameters such as the initial concentration of LEV (10-50 mg/L), voltage (15-35 V), pH (3-9), and catalyst dose (1-9 g/L). The successful incorporation of iron and other metals into the ECRs-alginate beads was confirmed by characterization tests such as EDX and FTIR. By conducting a batch reaction under optimal conditions (initial LEV concentration = 20 mg/L, pH = 4.5, voltage = 30V, and catalyst dose = 7 g/L), a remarkable degradation of 99% for LEV was achieved. Additionally, under these optimal conditions, a high removal efficiency of 92.3% for total organic carbon (TOC) could be attained within 120 min and these findings are remarkable compared to previous studies. The results further indicated that the degradation of levofloxacin (LEV) could be accurately quantified by utilizing the first-order kinetic reaction with a 0.03 min rate constant. The synthesized beads offered notable advantages in terms of being eco-friendly, simple to use, highly efficient, and easily recoverable from the liquid medium after use.
左氧氟沙星(LEV)在水溶液中的存在会对人类健康构成威胁,对水生生物和生态系统产生不利影响,并导致抗生素耐药细菌的产生。本研究旨在探讨利用电凝残留物(ECRs)作为电芬顿工艺中降解 LEV 的非均相催化剂的可行性。通过将电凝残留物与海藻酸钠结合,合成了 ECRs-海藻酸钠珠作为非均相电芬顿复合材料。采用响应面法研究了各种操作参数(如 LEV 的初始浓度(10-50mg/L)、电压(15-35V)、pH(3-9)和催化剂剂量(1-9g/L)的优化和影响。通过 EDX 和 FTIR 等特征测试证实了铁和其他金属成功掺入 ECRs-海藻酸钠珠中。在最佳条件下(初始 LEV 浓度=20mg/L,pH=4.5,电压=30V,催化剂剂量=7g/L)进行批量反应,LEV 的降解率达到 99%。此外,在这些最佳条件下,TOC 的去除效率高达 92.3%,在 120min 内即可达到,与以往的研究相比,这一结果非常显著。研究结果还表明,利用一级动力学反应可以准确地定量降解左氧氟沙星(LEV),其速率常数为 0.03 min。合成的珠粒具有环保、使用简单、高效、易于从使用后的液体介质中回收等显著优点。