Department of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong SAR00000, China.
Environ Sci Technol. 2022 Dec 6;56(23):16929-16939. doi: 10.1021/acs.est.2c06394. Epub 2022 Nov 21.
Acetaminophen is widely used to treat mild to moderate pain and to reduce fever. Under the worldwide COVID-19 pandemic, this over-the-counter pain reliever and fever reducer has been drastically consumed, which makes it even more abundant than ever in municipal wastewater and drinking water sources. Chlorine is the most widely used oxidant in drinking water disinfection, and chlorination generally causes the degradation of organic compounds, including acetaminophen. In this study, a new reaction pathway in the chlorination of acetaminophen, i.e., oxidative coupling reactions via acetaminophen radicals, was investigated both experimentally and computationally. Using an ultraperformance liquid chromatograph coupled to an electrospray ionization-triple quadrupole mass spectrometer, we detected over 20 polymeric products in chlorinated acetaminophen samples, some of which have structures similar to the legacy pollutants "polychlorinated biphenyls". Both C-C and C-O bonding products were found, and the corresponding bonding processes and kinetics were revealed by quantum chemical calculations. Based on the product confirmation and intrinsic reaction coordinate computations, a pathway for the formation of the polymeric products in the chlorination of acetaminophen was proposed. This study suggests that chlorination may cause not only degradation but also upgradation of a phenolic compound or contaminant.
对乙酰氨基酚被广泛用于治疗轻度至中度疼痛和降低体温。在全球 COVID-19 大流行期间,这种非处方止痛药和退烧药的消耗量急剧增加,导致其在市政废水中和饮用水源中的含量比以往任何时候都更加丰富。氯是饮用水消毒中最广泛使用的氧化剂,氯化通常会导致包括对乙酰氨基酚在内的有机化合物降解。在这项研究中,我们通过实验和计算研究了对乙酰氨基酚氯化过程中的一种新的反应途径,即通过对乙酰氨基酚自由基的氧化偶联反应。我们使用超高效液相色谱仪与电喷雾电离-三重四极杆质谱仪联用,在氯化对乙酰氨基酚样品中检测到了 20 多种聚合产物,其中一些具有与传统污染物“多氯联苯”相似的结构。我们发现了 C-C 和 C-O 键合产物,并通过量子化学计算揭示了相应的键合过程和动力学。基于产物确认和本征反应坐标计算,提出了对乙酰氨基酚氯化生成聚合产物的途径。这项研究表明,氯化不仅可能导致酚类化合物或污染物的降解,还可能导致其升级。