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探索大气中苯乙烯的 OH 引发反应以及范德华复合物的作用。

Exploring the OH-initiated reactions of styrene in the atmosphere and the role of van der Waals complex.

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui, 230026, PR China; National Synchrotron Radiation Laboratory, University of Science and Technology of China, Hefei, Anhui, 230029, PR China.

Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui, 230026, PR China.

出版信息

Chemosphere. 2021 Nov;282:131004. doi: 10.1016/j.chemosphere.2021.131004. Epub 2021 May 26.

Abstract

Reacting with OH provides a major sink for styrene in the atmosphere, with three possible pathways including OH-addition, H-abstraction and addition-dissociation reactions. However, the total rate coefficients of styrene + OH were measured as 1.2-6.2 × 10 cm molecule s under atmospheric conditions, varying by a maximum factor of 5. On the other hand, only one theoretical work reported this rate coefficient as 19.1 × 10 cm molecule s, which exhibits up to 16 times that measured in laboratory studies. In the present study, the reaction kinetics of styrene + OH was extensively studied with high-level quantum chemical methods combined with RRKM/master equation simulations. In particular, we carried out theoretical treatments for the formation of pre-reaction Van der Waals complexes of styrene + OH, and examined their influence on the reaction kinetics. The total rate coefficient for styrene + OH is calculated to be 1.7 × 10 cm molecule s at 300 K, 1 atm. The main products are addβ (88.2%), add5 (6.9%), addα (1.9%) and add3 (1.7%). Using our computed rate coefficient and the global atmospheric hydroxyl radical concentration (2 × 10 radicals per cm), the lifetime of styrene in the atmosphere is estimated at 8.0 h. The degradation of styrene might be negligible for the formation of ozone in the atmosphere based upon the photochemical ozone creation potentials calculation. The computed product yields indicate that addβ via subsequent reactions could significantly produce formaldehyde and benzaldehyde that were observed in previous experimental studies on styrene oxidation, and contribute to the formation of secondary organic aerosols.

摘要

与 OH 反应为大气中的苯乙烯提供了主要的汇,包括 OH-加成、H 抽提和加成-解离三种可能的途径。然而,在大气条件下,苯乙烯+OH 的总速率系数为 1.2-6.2×10cm 分子 s,最大变化幅度为 5 倍。另一方面,只有一项理论工作报道了这个速率系数为 19.1×10cm 分子 s,是实验室研究测量值的 16 倍。在本研究中,我们采用高精度量子化学方法结合 RRKM/master 方程模拟,对苯乙烯+OH 的反应动力学进行了广泛研究。特别是,我们对苯乙烯+OH 形成预反应范德华复合物进行了理论处理,并考察了它们对反应动力学的影响。在 300 K、1 atm 下,苯乙烯+OH 的总速率系数计算值为 1.7×10cm 分子 s。主要产物为 addβ(88.2%)、add5(6.9%)、addα(1.9%)和 add3(1.7%)。使用我们计算得到的速率系数和全球大气羟基自由基浓度(每立方厘米 2×10 个自由基),苯乙烯在大气中的寿命估计为 8.0 h。根据光化学臭氧产生潜能计算,苯乙烯的降解对大气中臭氧的形成可能可以忽略不计。计算得到的产物产率表明,addβ 通过后续反应可能会显著产生甲醛和苯甲醛,这在以前关于苯乙烯氧化的实验研究中已经观察到,并且有助于二次有机气溶胶的形成。

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