A chemical dynamics study on the gas-phase formation of triplet and singlet C5H2carbenes

Author:

He Chao,Galimova Galiya R.,Luo YuhengORCID,Zhao Long,Eckhardt André K.ORCID,Sun RuiORCID,Mebel Alexander M.ORCID,Kaiser Ralf I.ORCID

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-C5H2) 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.

Funder

U.S. Department of Energy

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference70 articles.

1. Laboratory and astronomical identification of cyclopropenylidene, C3H2;Thaddeus;Astrophys. J.,1985

2. C3H2 observations in dense dark clouds;Cox;Astron. Astrophys.,1989

3. Cyclopropenylidene;Reisenauer;Angew. Chem. Int. Ed. Engl.,1984

4. Astronomical detection of H2CCC

5. Vinylidene carbene: A new C3H2 species;Maier;J. Am. Chem. Soc.,1987

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