Directed Gas Phase Formation of Silene (H2SiCH2)

Zhenghai Yang, Srinivas Doddipatla, Chao He, Vladislav S. Krasnoukhov, Valeriy N. Azyazov, Alexander M. Mebel*, Ralf I. Kaiser*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

The silene molecule (H2SiCH2; X1A1) has been synthesized under single collision conditions via the bimolecular gas phase reaction of ground state methylidyne radicals (CH) with silane (SiH4). Exploiting crossed molecular beams experiments augmented by high-level electronic structure calculations, the elementary reaction commenced on the doublet surface through a barrierless insertion of the methylidyne radical into a silicon-hydrogen bond forming the silylmethyl (CH2SiH3; X2A′) complex followed by hydrogen migration to the methylsilyl radical (SiH2CH3; X2A′). Both silylmethyl and methylsilyl intermediates undergo unimolecular hydrogen loss to silene (H2SiCH2; X1A1). The exploration of the elementary reaction of methylidyne with silane delivers a unique view at the widely uncharted reaction dynamics and isomerization processes of the carbon–silicon system in the gas phase, which are noticeably different from those of the isovalent carbon system thus contributing to our knowledge on carbon silicon bond couplings at the molecular level.

Original languageEnglish
Pages (from-to)13584-13589
Number of pages6
JournalChemistry - A European Journal
Volume26
Issue number60
DOIs
StatePublished - 27 Oct 2020
Externally publishedYes

Keywords

  • carbon silicon bond
  • gas-phase reactions
  • reaction dynamics
  • silanes
  • silene

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