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ORIGINAL RESEARCH article

Front. Chem.
Sec. Theoretical and Computational Chemistry
Volume 12 - 2024 | doi: 10.3389/fchem.2024.1407355

Unveiling the Chemical Kinetics of Aminomethanol (NH 2 CH 2 OH): Insights into □□ ̇H and O 2 Photo-Oxidation Reactions and Formamide Dominance Provisionally Accepted

  • 1Khalifa University, United Arab Emirates

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In this study, we have expounded the chemical kinetics of aminomethanol in the reaction pathways initiated by the hydroxyl radical (O ̇H) with the aid of ab initio//density functional theory (DFT) i.e., coupled-cluster theory: (CCSD(T))//hybrid-DFT:(M06-2X/6-311++G(3df,3pd). We have explored various possible directions of the O ̇H radical on aminomethanol, as well as the formation of distinct pre-reactive complexes. Our computational findings reveal that the H transfer necessitates activation energies ranging from 4.1–6.5 kcal/mol from the –CH2 group, 3.5–6.5 kcal/mol from the –NH2 group and 7–9.3 kcal/mol from the –OH group of three rotational conformers. The H transfer from –CH2, –NH2 and –OH exhibits an estimated total rate constant (kOH) of approximately 1.97 × 10-11 cm3 molecule−1 s−1 at 300 K. The branching fraction analysis indicates a pronounced dominance of C-centered NH2C ̇HOH radicals with a favorability of 77%, surpassing the N-centered N ̇HCH2OH (20%) and O-centered NH2CH2O ̇ (3%) radicals. Moreover, our investigation delves into the oxidation of the prominently favored carbon-centered NH2C ̇HOH radical through its interaction with atmospheric oxygen molecules. Intriguingly, our findings reveal that formamide (NH2CHO) emerges as the predominant product in the NH2C ̇HOH + 3O2 reaction, eclipsing alternative outcomes such as amino formic acid (NH2COOH) and formimidic acid (HN=C(H)-OH). At atmospheric conditions pertinent to the troposphere, the branching fraction value for the formation of formamide is about 99%, coupled with a rate constant of 5.5  10-12 cm3 molecule−1 s−1. Finally, we have scrutinized the detrimental impact of formamide on the atmosphere. Interaction of formamide with atmospheric hydroxyl radicals could give rise to the production of potentially perilous compounds such as HNCO. Further, unreacted N ̇HCH2OH radicals may initiate the formation of carcinogenic nitrosamines when reacting with trace N-oxides (namely, NO and NO2). This, in turn, escalates the environmental risk factors.

Keywords: aminomethanol, Photooxidalion, DFT, transition state theory, formamide, Rate consant

Received: 26 Mar 2024; Accepted: 08 May 2024.

Copyright: © 2024 Mohamad and NULAKANI. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

* Correspondence: Mx. Akbar Ali Mohamad, Khalifa University, Abu Dhabi, United Arab Emirates