Reaction dynamics of S(3P) with 1,3-butadiene and isoprene: crossed-beam scattering, low-temperature flow experiments, and high-level electronic structure calculations†

IF 3.4 3区 化学 Q2 Chemistry
Jinxin Lang, Casey D. Foley, Shameemah Thawoos, Abbas Behzadfar, Yanan Liu, Judit Zádor and Arthur G. Suits
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引用次数: 0

Abstract

Sulfur atoms serve as key players in diverse chemical processes, from astrochemistry at very low temperature to combustion at high temperature. Building upon our prior findings, showing cyclization to thiophenes following the reaction of ground-state sulfur atoms with dienes, we here extend this investigation to include many additional reaction products, guided by detailed theoretical predictions. The outcomes highlight the complex formation of products during intersystem crossing (ISC) to the singlet surfaces. Here, we employed crossed-beam velocity map imaging and high-level ab initio methods to explore the reaction of S(3P) with 1,3-butadiene and isoprene under single-collision conditions and in low-temperature flows. For the butadiene reaction, our experimental results show the formation of thiophene via H2 loss, a 2H-thiophenyl radical through H loss, and thioketene through ethene loss at a slightly higher collision energy compared to previous observations. Complementary Chirped-Pulse Fourier-Transform mmWave spectroscopy (CP-FTmmW) measurements in a uniform flow confirmed the formation of thioketene in the reaction at 20 K. For the isoprene reaction, we observed analogous products along with the 2H-thiophenyl radical arising from methyl loss and C3H4S (loss of ethene or H2 + acetylene). CP-FTmmW detected the formation of thioformaldehyde via loss of 1,3-butadiene, again in the 20 K flow. Coupled-cluster calculations on the pathways found by the automated kinetic workflow code KinBot support these findings and indicate ISC to the singlet surface, leading to the generation of various long-lived intermediates, including 5-membered heterocycles.

Abstract Image

S(3P) 与 1,3-丁二烯和异戊二烯的反应动力学:交叉束散射、低温流动实验和高级电子结构计算
从极低温度下的天体化学到高温下的燃烧,硫原子是各种化学过程中的关键角色。我们之前的研究结果表明,基态硫原子与二烯反应后会环化生成噻吩,在此基础上,我们在详细理论预测的指导下扩展了这一研究,将许多其他反应产物也包括在内。研究结果凸显了在系统间交叉(ISC)过程中形成的单质表面产物的复杂性。在这里,我们采用了交叉光束速度图成像和高水平的 ab initio 方法来探索 S(3P) 与 1,3 丁二烯和异戊二烯在单次碰撞条件下和低温流动中的反应。对于丁二烯反应,我们的实验结果表明,与之前的观测结果相比,在碰撞能量稍高的条件下,通过 H2 损失形成噻吩,通过 H 损失形成 2H-thiophenyl 自由基,通过乙烯损失形成噻酮。在均匀流中进行的互补啁啾脉冲傅立叶变换毫米波光谱(CP-FTmmW)测量证实,在 20 K 的反应中形成了噻吨。在异戊二烯反应中,我们观察到了类似的产物,以及甲基损失和 C3H4S(乙烯或 H2 + 乙炔损失)产生的 2H-thiophenyl 自由基。CP-FTmmW 通过 1,3 丁二烯的损失检测到硫代甲醛的形成,同样是在 20 K 的气流中。对自动动力学工作流程代码 KinBot 所发现的路径进行的耦合簇计算支持这些发现,并表明 ISC 通向单子表面,从而生成各种长寿命中间产物,包括五元杂环。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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