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关于三重态和单重态CH卡宾气相形成的化学动力学研究。

A chemical dynamics study on the gas-phase formation of triplet and singlet CH carbenes.

作者信息

He Chao, Galimova Galiya R, Luo Yuheng, Zhao Long, Eckhardt André K, Sun Rui, Mebel Alexander M, Kaiser Ralf I

机构信息

Department of Chemistry, University of Hawai'i at Manoa, Honolulu, HI 96822.

Department of Chemistry and Biochemistry, Florida International University, Miami, FL 33199.

出版信息

Proc Natl Acad Sci U S A. 2020 Dec 1;117(48):30142-30150. doi: 10.1073/pnas.2019257117. Epub 2020 Nov 16.

Abstract

Since the postulation of carbenes by Buchner (1903) and Staudinger (1912) as electron-deficient transient species carrying a divalent carbon atom, carbenes have emerged as key reactive intermediates in organic synthesis and in molecular mass growth processes leading eventually to carbonaceous nanostructures in the interstellar medium and in combustion systems. Contemplating the short lifetimes of these transient molecules and their tendency for dimerization, free carbenes represent one of the foremost obscured classes of organic reactive intermediates. Here, we afford an exceptional glance into the fundamentally unknown gas-phase chemistry of preparing two prototype carbenes with distinct multiplicities-triplet pentadiynylidene (HCCCCCH) and singlet ethynylcyclopropenylidene (c-CH) carbene-via the elementary reaction of the simplest organic radical-methylidyne (CH)-with diacetylene (HCCCCH) under single-collision conditions. Our combination of crossed molecular beam data with electronic structure calculations and quasi-classical trajectory simulations reveals fundamental reaction mechanisms and facilitates an intimate understanding of bond-breaking processes and isomerization processes of highly reactive hydrocarbon intermediates. The agreement between experimental chemical dynamics studies under single-collision conditions and the outcome of trajectory simulations discloses that molecular beam studies merged with dynamics simulations have advanced to such a level that polyatomic reactions with relevance to extreme astrochemical and combustion chemistry conditions can be elucidated at the molecular level and expanded to higher-order homolog carbenes such as butadiynylcyclopropenylidene and triplet heptatriynylidene, thus offering a versatile strategy to explore the exotic chemistry of novel higher-order carbenes in the gas phase.

摘要

自布赫纳(1903年)和施陶丁格(1912年)将卡宾假定为带有二价碳原子的缺电子瞬态物种以来,卡宾已成为有机合成以及分子质量增长过程中的关键反应中间体,这些过程最终会在星际介质和燃烧系统中形成碳质纳米结构。考虑到这些瞬态分子的短寿命及其二聚化倾向,游离卡宾是最难捉摸的有机反应中间体类别之一。在此,我们通过最简单的有机自由基——亚甲基(CH)——与丁二炔(HCCCCH)在单碰撞条件下的基元反应,对制备具有不同多重性的两种原型卡宾——三重态戊二炔基(HCCCCCH)和单重态乙炔基环丙烯基(c-CH)卡宾——这一根本未知的气相化学过程进行了独特的观察。我们将交叉分子束数据与电子结构计算及准经典轨迹模拟相结合,揭示了基本反应机理,并有助于深入理解高反应性烃类中间体的断键过程和异构化过程。单碰撞条件下的实验化学动力学研究与轨迹模拟结果之间的一致性表明,分子束研究与动力学模拟相结合已发展到这样一个水平,即与极端天体化学和燃烧化学条件相关的多原子反应能够在分子层面得到阐明,并扩展到高阶同系物卡宾,如丁二炔基环丙烯基和三重态庚三炔基,从而为探索气相中新型高阶卡宾的奇异化学提供了一种通用策略。

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