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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Gas-phase synthetic pathways to benzene and benzonitrile: a combined microwave and thermochemical investigation
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Gas-phase synthetic pathways to benzene and benzonitrile: a combined microwave and thermochemical investigation

机译:加入苯和苯腈的气相合成途径:综合微波和热化学研究

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The recent astronomical detection of benzonitrile (C6H5CN) in the cold, starless cloud TMC-1 demonstrates that aromatic chemistry is efficient even in the primordial stages of star and planet formation. C6H5CN may serve as a convenient observational proxy for benzene, which is otherwise challenging to detect in space, provided the chemistry linking these two molecules is tightly constrained. Here we present a high-resolution microwave spectroscopic study in combination with an accurate thermochemical treatment of the formation chemistry of C6H5CN and benzene. We demonstrate that C6H5CN is a highly useful tracer for benzene in the presence of CN radical, either in space or in the laboratory, and by inference, that the reaction C2H + CH2(CH)(2)CH2 yields benzene, along with its high-energy polar isomer fulvene. In addition, we find that the higher energy isomer, C6H5NC, is formed at 0.1% abundance relative to C6H5CN. By exploiting -CN tagging, formation pathways to produce benzene using a variety of acyclic hydrocarbon precursors are then explored. A robust, self-consistent, and chemically accurate theoretical treatment has also been undertaken for several key reactions. The results are discussed both in the context of aromatic molecule synthesis and astrochemistry.
机译:最近苄腈的天文检测(C6H5CN)中冷器,云星的TMC-1证实,芳香化学是有效的,即使在恒星和行星形成的原始阶段。 C6H5CN可以用作方便的观察代理苯,这是具有挑战性的,否则在空间进行检测,提供连接这两个分子的化学性质被紧紧地限制。这里,我们提出在组合高分辨率微波光谱研究与C6H5CN和苯的形成化学的精确热化学处理。我们证明C6H5CN是用于CN基团的存在下苯的非常有用的示踪剂,无论是在空间或在实验室中,并通过推断,该反应C2H + CH 2(CH)(2)CH 2产生苯,以其高沿-Energy极性异构体富烯。此外,我们发现,较高能量的异构体,C6H5NC,在&LT形成的;丰度相对于C6H5CN 0.1%。通过利用-CN标记,使用多种无环烃基前体的形成途径,以产生苯然后探讨。一个强大的,自洽的,和化学准确理论处理也已进行了几个关键反应。结果列于芳族分子合成和天体化学的上下文中讨论两者。

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