Faculty of Geosciences and Environmental Engineering, Southwest Jiaotong University, Chengdu, 611756, China.
Faculty of Geosciences and Environmental Engineering, Southwest Jiaotong University, Chengdu, 611756, China.
Chemosphere. 2021 Apr;268:128818. doi: 10.1016/j.chemosphere.2020.128818. Epub 2020 Nov 10.
Exploration of novel advanced oxidation systems with high efficiency toward radical generation is of significant importance due to the extensive and versatile application of reactive species in the wastewater treatment. Herein we report a simple UV-catalytic homogeneous advanced oxidation system (UV/Fe/hydrogen sulfite (BS)), which is capable of generating abundant radicals (e.g., SO, SO, SO and HO) in the aqueous environment. Sulfamethoxazole (SMX) degradation using this system was tested. Results indicated that SMX could be degraded effectively by UV/Fe/BS and sulfate radical (SO) and hydroxyl radical (HO) were verified to be presented in this system and be contributive to SMX removal. The acidic pH (4.0) and a low BS/Fe ratio (10:1) were suitable for SMX degradation. The presence of fulvic acid (FA) and HCO strongly inhibited the degradation of SMX, but obvious acceleration was observed in the presence of NO due to its contribution on additional radical generation by photosensitization. Based on the detected transformation products through LC-MS analysis, the degradation pathway of SMX by UV/Fe/BS was proposed including hydroxylation and bond cleavage.
由于活性物种在废水处理中的广泛和多样的应用,探索高效产生自由基的新型高级氧化系统具有重要意义。本文报道了一种简单的紫外光催化均相高级氧化系统(UV/Fe/亚硫酸氢盐(BS)),该系统能够在水相环境中生成丰富的自由基(如 SO、SO、SO 和 HO)。对该系统中磺胺甲恶唑(SMX)的降解进行了测试。结果表明,UV/Fe/BS 可以有效地降解 SMX,并且在该系统中验证了硫酸根自由基(SO)和羟基自由基(HO)的存在,并对 SMX 的去除有贡献。酸性 pH(4.0)和低 BS/Fe 比(10:1)有利于 SMX 的降解。富里酸(FA)和 HCO 的存在强烈抑制了 SMX 的降解,但由于其通过光致敏化作用对额外自由基生成的贡献,在存在 NO 的情况下观察到明显的加速。根据通过 LC-MS 分析检测到的转化产物,提出了 UV/Fe/BS 降解 SMX 的途径,包括羟化和键断裂。