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对R. Chow、D. K. W. Mok、E. P. F. Lee和J. M. Dyke于2021年发表的《关于“水对BrO + HO气相反应的影响:机理、动力学和产物”的评论》的回复,DOI。

Reply to the 'comment on "impact of water on the BrO + HO gas-phase reaction: mechanism, kinetics and products"' by R. Chow, D. K. W. Mok, E. P. F. Lee and J. M. Dyke, , 2021, , DOI.

作者信息

Tsona Narcisse T, Tang Shanshan, Du Lin

机构信息

School of Life Science, Shandong University, Binhai Road 72, Qingdao 266237, China.

Environment Research Institute, Shandong University, Binhai Road 72, Qingdao 266237, China.

出版信息

Phys Chem Chem Phys. 2021 Mar 18;23(10):6316-6318. doi: 10.1039/d0cp02854a.

Abstract

We reply to the comment on our recent paper entitled "Impact of water on the BrO + HO2 gas-phase reaction: mechanism, kinetics and products" by Chow et al. In their comment, the authors raised the differences between our results and their results in an earlier paper (R. Chow, D. K. W. Mok, E. P. F. Lee and J. M. Dyke, Phys. Chem. Chem. Phys., 2016, 18, 30554-30569), in terms of kinetics and potential energy surface, and they attributed these differences to the use of a small integration grid size and closed-shell wavefunctions for geometry optimizations in our study. Indeed, in our original manuscript, we did not ensure the proper use of UHF wavefunctions for singlet states, which led the singlet states to be treated with restricted M06-2X wavefunctions during optimizations. Furthermore, the default integration grid was used. New geometry optimizations have been performed where reactant complexes on the singlet surface were treated in their open-shell singlet states (ensured by using unrestricted-spin wave-functions) and using very tight convergence criteria, and new reaction rate constants have been calculated based on new energy barriers. No barrierless hydrogen abstraction reactions were observed as reported in our previous results and, consequently, the outer rate coefficient in the two-transition state approach (given by eqn (5) in Tsona et al., 2019) was determined by the collision theory. Overall rate constants exhibit a negative temperature dependency in the 200-400 K range. Despite the changes on the reaction energies and kinetics due to wrong UHF wavefunctions, our main conclusion that water has no net effect on the BrO + HO2 → BrOH + O2 reaction is still valid.

摘要

我们回复了Chow等人对我们最近发表的题为《水对BrO + HO2气相反应的影响:机理、动力学和产物》的论文的评论。在他们的评论中,作者提出了我们的结果与他们早期一篇论文(R. Chow, D. K. W. Mok, E. P. F. Lee和J. M. Dyke, Phys. Chem. Chem. Phys., 2016, 18, 30554 - 30569)在动力学和势能面方面的差异,并将这些差异归因于我们研究中使用了较小的积分网格尺寸和用于几何优化的闭壳层波函数。确实,在我们原来的手稿中,我们没有确保对单重态正确使用UHF波函数,这导致在优化过程中单重态用受限的M06 - 2X波函数处理。此外,使用的是默认的积分网格。我们进行了新的几何优化,其中单重态表面上的反应物复合物以其开壳层单重态处理(通过使用无限制自旋波函数确保)并使用非常严格的收敛标准,并且基于新的能垒计算了新的反应速率常数。没有观察到我们之前结果中报道的无障碍氢提取反应,因此,双过渡态方法中的外速率系数(由Tsona等人2019年的eqn (5)给出)由碰撞理论确定。在200 - 400 K范围内,总速率常数呈现负温度依赖性。尽管由于错误的UHF波函数导致反应能量和动力学发生了变化,但我们关于水对BrO + HO2 → BrOH + O2反应没有净影响的主要结论仍然有效。

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