Department of Energy, Environmental & Chemical Engineering Washington University in St. Louis, St. Louis, Missouri 63130, United States.
Environ Sci Technol. 2023 Nov 28;57(47):18443-18451. doi: 10.1021/acs.est.2c06376. Epub 2023 Feb 7.
The herbicide isoxaflutole has the potential to contaminate drinking water directly, as well as upon hydrolyzing to its active form diketonitrile. Diketonitrile also may impact water quality by acting as a precursor for dichloroacetonitrile (DCAN), which is an unregulated but highly toxic disinfection byproduct (DBP). In this study, we investigated the reaction of diketonitrile with free chlorine and chloramine to form DCAN. We found that diketonitrile reacts with free chlorine within seconds but reacts with chloramine on the time scale of hours to days. In the presence of both oxidants, DCAN was generated at yields up to 100%. Diketonitrile reacted fastest with chlorine at circumneutral pH, which was consistent with base-catalyzed halogenation involving the enolate form of diketonitrile present at alkaline pH and electrophilic hypochlorous acid, which decreases in abundance above its p (7.5). In contrast, we found that diketonitrile reacts faster with chloramine as pH values decreased, consistent with an attack on the enolate by electrophilic protonated monochloramine that increases in abundance at acidic pH approaching its p (1.6). Our results indicate that increasing isoxaflutole use, particularly in light of the recent release of genetically modified isoxaflutole-tolerant crops, could result in greater occurrences of a high-yield DCAN precursor during disinfection.
除草剂异恶唑草酮有可能直接污染饮用水,也有可能在水解为其活性形式二酮腈后污染饮用水。二酮腈还可能通过作为不受管制但毒性极高的消毒副产物(DBP)二氯乙腈(DCAN)的前体而影响水质。在这项研究中,我们研究了二酮腈与游离氯和氯胺反应形成 DCAN 的情况。我们发现二酮腈在几秒钟内与游离氯反应,但在数小时至数天的时间内与氯胺反应。在两种氧化剂的存在下,DCAN 的生成产率高达 100%。二酮腈在接近中性 pH 值时与氯反应最快,这与碱性 pH 值下存在的二酮腈烯醇化物的碱催化卤化反应一致,而碱性 pH 值下的缺电子次氯酸的丰度降低。相比之下,我们发现随着 pH 值的降低,二酮腈与氯胺的反应速度更快,这与亲电质子化一氯胺对烯醇化物的攻击一致,而亲电质子化一氯胺的丰度在接近其 p(1.6)的酸性 pH 值下增加。我们的结果表明,异恶唑草酮的使用量增加,特别是考虑到最近释放的耐异恶唑草酮基因改造作物,可能会导致在消毒过程中产生更多的高产量 DCAN 前体。