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异氰酸的气相反应:动力学、机理及异丙基氨基甲酰的形成

Gas Phase Reaction of Isocyanic Acid: Kinetics, Mechanisms, and Formation of Isopropyl Aminocarbonyl.

作者信息

Pham Tien Van, Tran Anh Van

机构信息

School of Chemical Engineering, Hanoi University of Science and Technology, Hanoi 100000, Vietnam.

出版信息

ACS Omega. 2021 Dec 13;6(50):34661-34674. doi: 10.1021/acsomega.1c05063. eCollection 2021 Dec 21.

Abstract

Isocyanic acid, HNCO, mainly emitted by combustion processes, is doubted to be detrimental to human health if its concentration surpasses ∼1 ppbv. Very little information has been found regarding the HNCO loss in the gas phase. This study aims to close this knowledge gap by performing a theoretical kinetic study on the reaction of HNCO with the propargyl radical. The potential energy surface of the HNCO + CH reaction was characterized utilizing high-level CCSD(T)/CBS(TQ5)//B3LYP/6-311++G(3df,2p) quantum-chemical approaches, followed by TST and RRKM/ME kinetic computations. The obtained results reveal that the reaction can proceed via H-abstraction, leading to the CH + NCO bimolecular products with energy barriers of 23-25 kcal/mol, and/or addition, resulting in CHNO intermediates with 23-26 kcal/mol barrier heights. The CHNO adducts when formed can decompose to products and/or return to HNCO + CH in which the reverse decompositions are found to be dominant with a branching ratio that accounts for nearly 100% at 300 K and 760 Torr. The calculated -independent rate coefficients indicate that at low temperatures, the H-abstraction channels are insignificant. However, at high temperatures ( > 1500 K), the H-abstraction path leading to HCCCH + NCO prevails with a branching ratio of ∼50-53% in the descending 1800-1500 K temperature range at 760 Torr, while the H-abstraction leading to HCCCH + NCO is favorable at > 1800 K, with the yield reaching above 50% at 760 Torr. In contrast to the H-abstraction rate constants, the calculated values for the additions and the CHNO decompositions show a positive pressure dependence. Both the total rate constants for the reactions HNCO + CH → products and CHNO → products, which are, respectively, () = 3.53 × 10 exp[(-21.35 ± 0.06 kcal/mol)/RT] cm molecule s and () = 1.13 × 10 exp[(-11.77 ± 0.16 kcal/mol)/RT] s, increase with the increasing temperature in the 300-2000 K range at 760 Torr. The rate constant of HNCO + CH → products is about 8 orders of magnitude smaller than the value of HCHO + CH → products, showing that HCHO is more reactive toward the CH free radicals than HNCO. The computed heats of formation for several species agree well with the available literature data with the deviation less than 1.0 kcal/mol, indicating that the methods used in this study are extremely reliable. With the given results, it is vigorously suggested that the predicted rate constants, together with the thermodynamic data of the species involved, can be confidently used for modeling HNCO-related systems under atmospheric and combustion conditions.

摘要

异氰酸(HNCO)主要由燃烧过程排放,若其浓度超过约1 ppbv,就被怀疑对人体健康有害。关于气相中HNCO损失的信息极少。本研究旨在通过对HNCO与炔丙基自由基反应进行理论动力学研究来填补这一知识空白。利用高水平的CCSD(T)/CBS(TQ5)//B3LYP/6 - 311++G(3df,2p)量子化学方法对HNCO + CH反应的势能面进行了表征,随后进行了TST和RRKM/ME动力学计算。所得结果表明,该反应可通过氢提取进行,生成能量垒为23 - 25 kcal/mol的CH + NCO双分子产物,和/或通过加成反应,生成势垒高度为23 - 26 kcal/mol的CHNO中间体。CHNO加合物形成后可分解为产物和/或回到HNCO + CH,发现逆向分解在300 K和760 Torr时占主导,分支比接近100%。计算得到的与压力无关的速率系数表明,在低温下,氢提取通道不显著。然而,在高温(>1500 K)时,在760 Torr下,导致HCCCH + NCO的氢提取路径在1800 - 1500 K的降温温度范围内占主导,分支比约为50 - 53%,而在>1800 K时,导致HCCCH + NCO的氢提取是有利的,在760 Torr下产率达到50%以上。与氢提取速率常数相反,计算得到的加成和CHNO分解的值显示出正压力依赖性。反应HNCO + CH → 产物和CHNO → 产物的总速率常数分别为() = 3.53 × 10 exp[(-21.35 ± 0.06 kcal/mol)/RT] cm molecule s和() = 1.13 × 10 exp[(-11.77 ± 0.16 kcal/mol)/RT] s,在760 Torr下,在300 - 2000 K范围内随温度升高而增加。HNCO + CH → 产物的速率常数比HCHO + CH → 产物的值小约8个数量级,表明HCHO对CH自由基的反应性比HNCO高。计算得到的几种物种的生成热与现有文献数据吻合良好,偏差小于1.0 kcal/mol,表明本研究中使用的方法极其可靠。基于给定结果,强烈建议预测的速率常数以及所涉及物种的热力学数据可自信地用于模拟大气和燃烧条件下与HNCO相关的系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eab7/8697403/fc7dc00fa85b/ao1c05063_0002.jpg

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