Reduction‐Induced C─C Cleavage and Site‐Specific Hydrogenation of a Highly Strained Bilayer Spironanographene
Abstract
Abstract The chemical reduction of a bilayer spironanographene, spiro‐NG (C 137 H 120 ), with Na and K metals in the presence of [2.2.2]cryptand to yield [Na + (2.2.2‐cryptand)](C 137 H 121 − ) ( 1 ) and [K + (2.2.2‐cryptand)](C 137 H 121 − ) ( 2 ), respectively, is reported. X‐ray crystallography reveals the formation of a new “naked” anion ( spiro‐NG H − ), in which spirocyclic ring cleavage and subsequent hydrogenation have occurred. Density Functional Theory (DFT) calculations suggest that the generation of the radical anion of the parent nanographene ( spiro‐NG • − ), upon electron acceptance from Na and K metals, induces the cleavage of the strained spirobifluorene core. The resulting spin density localizes on a particular carbon atom, previously attached to the spiranic sp 3 carbon atom, facilitating a site‐specific hydrogenation to afford ( spiro‐NG H − ). The electrostatic potential map of this anion reveals electron density concentrated at the five‐membered ring of the readily formed indenyl fragment, thus enhancing the aromaticity of the system. Furthermore, nuclear magnetic resonance (NMR) and UV–vis absorption spectroscopy experiments allowed to follow the in situ reduction and hydrogenation processes in detail.
Article Details
Authors (8)
Juan Lión‐Villar
Departamento de Química Orgánica I Facultad de Ciencias Químicas Universidad Complutense Avda. Complutense s/n 28040 Madrid Spain
Herdya S. Torchon
Department of Chemistry University at Albany State University of New York 1400 Washington Avenue Albany NY 12222 USA
Yikun Zhu
Department of Chemistry
Zheng Wei
Jesús M. Fernández‐García
Departamento De Química Orgánica I Facultad De Ciencias Químicas Universidad Complutense de Madrid Madrid Spain
Israel Fernández
Departamento de Química Orgánica and Centro de Innovación en Química Avanzada (ORFEO-CINQA), Facultad de Ciencias Químicas
Marina A. Petrukhina
Department of Chemistry
Nazario Martín
IMDEA Nanoscience, C/ Faraday 9 Campus De Cantoblanco Madrid Spain