School of Nuclear Science and Technology, University of Science and Technology of China, Hefei, People's Republic of China.
Center for Advancing Electronics Dresden (CFAED) and Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, 01062, Dresden, Germany.
Chemosphere. 2023 Sep;334:138998. doi: 10.1016/j.chemosphere.2023.138998. Epub 2023 May 19.
The demand for efficient wastewater treatment is becoming increasingly urgent due to the rising threat of pharmaceutical residues in water. As a sustainable advanced oxidation process, cold plasma technology is a promising approach for water treatment. However, the adoption of the technology encounters several challenges, including the low treatment efficiency and the potentially unknown environmental impact. Here, microbubble generation was integrated with cold plasma system to enhance treatment of wastewater contaminated with diclofenac (DCF). The degradation efficiency depended on the discharge voltage, gas flow, initial concentration, and pH value. The best degradation efficiency was 90.9% after 45 min plasma-bubble treatment under the optimum process parameters. The hybrid plasma-bubble system exhibited strongly synergistic performance heralded by up to seven-times higher DCF removal rates than the two systems operated separately. The plasma-bubble treatment remains effective even after addition of SO, Cl, CO, HCO, and humic acid (HA) as interfering background substances. The contributions of •O, O, •OH, and HO reactive species to the DCF degradation process were specified. The synergistic mechanisms for DCF degradation were deduced through the analysis of the degradation intermediates. Further, the plasma-bubble treated water was proven safe and effective to stimulate seed germination and plant growth for sustainable agriculture applications. Overall, these findings provide new insights and a feasible approach with a highly synergistic removal effect for the plasma-enhanced microbubble wastewater treatment, without generating secondary contaminants.
由于水中药物残留的威胁日益增加,高效废水处理的需求变得愈发紧迫。作为一种可持续的高级氧化工艺,冷等离子体技术是一种很有前途的水处理方法。然而,该技术的应用面临着一些挑战,包括处理效率低和潜在的未知环境影响。在这里,微泡生成与冷等离子体系统相结合,以增强对受二氯芬酸(DCF)污染的废水的处理。降解效率取决于放电电压、气体流量、初始浓度和 pH 值。在最佳工艺参数下,等离子体-气泡处理 45 分钟后,降解效率最高可达 90.9%。与单独运行的两个系统相比,混合等离子体-气泡系统表现出更强的协同性能,DCF 的去除率高达 7 倍。即使添加 SO、Cl、CO、HCO 和腐殖酸(HA)等干扰背景物质,等离子体-气泡处理仍然有效。指定了•O、O、•OH 和 HO 反应性物质对 DCF 降解过程的贡献。通过分析降解中间体推导出 DCF 降解的协同机制。此外,等离子体-气泡处理后的水被证明是安全有效的,可用于刺激种子发芽和植物生长,以实现可持续农业应用。总的来说,这些发现为等离子体增强微泡废水处理提供了新的见解和可行的方法,具有高度协同的去除效果,不会产生二次污染物。