Institute of Municipal Engineering, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China.
Institute of Water Resources & Ocean Engineering, Ocean College, Zhejiang University, Hangzhou 310058, China.
Molecules. 2019 Aug 8;24(16):2874. doi: 10.3390/molecules24162874.
Artificial sweeteners (ASWs), a class of emerging contaminants with good water solubility, have attracted much attention recently because of their wide use and negative impact on the aquatic environment and drinking water. Efficient technologies for removing ASWs are in urgent need. This study investigated degradation of typical ASW acesulfame by ozone-activated peroxymonosulfate process (O/PMS) in prepared and real waters. O/PMS can degrade >90% acesulfame in prepared water within 15 min at a low dosage of O (60 ± 5 µg∙min) and PMS (0.4 mM). Ozone, hydroxyl radical (HO•), and sulfate radical (SO•) were identified as contributors for ACE degradation and their contribution proportion was 27.1%, 25.4%, and 47.5% respectively. O/PMS showed the best degradation performance at neutral pH and were sensitive to constituents such as chloride and natural organic matters. The qualitative analysis of degradation products confirmed the involvement of hydroxyl radical and sulfate radical and figured out that the active sites of ACE were the C=C bond, ether bond, and C-N bond. The electrical energy per order ACE degradation were calculated to be 4.6 kWh/m. Our findings indicate that O is an efficient PMS activator and O/PMS is promising due to its characteristic of tunable OHO• SO• ternary oxidant involving.
人工甜味剂(ASWs)是一类具有良好水溶性的新兴污染物,由于其广泛的应用和对水生态环境和饮用水的负面影响,最近引起了人们的极大关注。去除 ASWs 的高效技术迫在眉睫。本研究考察了臭氧活化过一硫酸盐工艺(O/PMS)在制备水和实际水中对典型 ASW 乙酰磺胺酸钾的降解。在低剂量的 O(60±5μg·min)和 PMS(0.4mM)下,O/PMS 可在 15min 内将制备水中>90%的乙酰磺胺酸钾降解。臭氧、羟基自由基(HO•)和硫酸根自由基(SO•)被确定为 ACE 降解的贡献者,其贡献比例分别为 27.1%、25.4%和 47.5%。O/PMS 在中性 pH 下表现出最佳的降解性能,并且对氯离子和天然有机物等成分敏感。降解产物的定性分析证实了羟基自由基和硫酸根自由基的参与,并指出 ACE 的活性位点是 C=C 键、醚键和 C-N 键。计算得到 ACE 降解的单位电耗为 4.6kWh/m。我们的研究结果表明,O 是一种有效的 PMS 活化剂,由于其涉及可调变的 OHO•SO•三元氧化剂的特性,O/PMS 具有广阔的应用前景。