A crystalline doubly oxidized carbene.
basic_science · Level V
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- Record sourced from PubMed, PMID 37730995.
- Also identified by DOI 10.1038/s41586-023-06539-x.
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Abstract
The chemistry of carbon is governed by the octet rule, which refers to its tendency to have eight electrons in its valence shell. However, a few exceptions do exist, for example, the trityl radical (Ph<sub>3</sub>C∙) (ref. <sup>1</sup>) and carbocation (Ph<sub>3</sub>C<sup>+</sup>) (ref. <sup>2</sup>) with seven and six valence electrons, respectively, and carbenes (R<sub>2</sub>C:)-two-coordinate octet-defying species with formally six valence electrons<sup>3</sup>. Carbenes are now powerful tools in chemistry, and have even found applications in material and medicinal sciences<sup>4</sup>. Can we undress the carbene further by removing its non-bonding electrons? Here we describe the synthesis of a crystalline doubly oxidized carbene (R<sub>2</sub>C<sup>2+</sup>), through a two-electron oxidation/oxide-ion abstraction sequence from an electron-rich carbene<sup>5</sup>. Despite a cumulenic structure and strong delocalization of the positive charges, the dicoordinate carbon centre maintains significant electrophilicity, and possesses two accessible vacant orbitals. A two-electron reduction/deprotonation sequence regenerates the parent carbene, fully consistent with its description as a doubly oxidized carbene. This work demonstrates that the use of bulky strong electron-donor substituents can simultaneously impart electronic stabilization and steric protection to both vacant orbitals on the central carbon atom, paving the way for the isolation of a variety of doubly oxidized carbenes.