Conrad Jacy K, Pilgrim Corey D, Pimblott Simon M, Mezyk Stephen P, Horne Gregory P
Center for Radiation Chemistry Research, Idaho National Laboratory 1955 N. Fremont Ave. Idaho Falls ID 83415 USA
Department of Chemistry and Biochemistry, California State University Long Beach 1250 Bellflower Blvd. Long Beach CA 90840 USA.
RSC Adv. 2022 Oct 18;12(46):29757-29766. doi: 10.1039/d2ra03392e. eCollection 2022 Oct 17.
Acetohydroxamic acid (AHA) is a small organic acid with a wide variety of industrial, biological, and pharmacological applications. A deep fundamental molecular level understanding of the mechanisms responsible for the radical-induced reactions of AHA in these environments is necessary to predict and control their behaviour and elucidate their interplay with other attendant chemical species, for example, the oxidative degradation products of AHA. To this end, we present a comprehensive, multiscale computer model for interrogating the radical-induced degradation of AHA in acidic aqueous solutions. Model predictions were critically evaluated by a systematic experimental radiation chemistry investigation, leveraging time-resolved electron pulse irradiation techniques for the measurement of new radical reaction rate coefficients, and steady-state gamma irradiations for the identification and quantification of AHA degradation products: acetic acid, hydroxylamine, nitrous oxide, and molecular hydrogen, with formic acid and methane as minor products. Excellent agreement was achieved between calculation and experiment, indicating that this fundamental model can accurately predict the degradation pathways of AHA under irradiation in acidic aqueous solutions.
乙酰氧肟酸(AHA)是一种具有多种工业、生物和药理应用的小分子有机酸。要预测和控制AHA在这些环境中的行为,并阐明其与其他伴随化学物质(例如AHA的氧化降解产物)的相互作用,有必要从分子层面深入、全面地了解导致AHA发生自由基诱导反应的机制。为此,我们提出了一个全面的多尺度计算机模型,用于研究AHA在酸性水溶液中的自由基诱导降解。通过系统的实验辐射化学研究对模型预测进行了严格评估,利用时间分辨电子脉冲辐照技术测量新的自由基反应速率系数,并利用稳态伽马辐照鉴定和定量AHA降解产物:乙酸、羟胺、一氧化二氮和分子氢,甲酸和甲烷为次要产物。计算结果与实验结果高度吻合,表明该基础模型能够准确预测AHA在酸性水溶液辐照下的降解途径。