Room Temperature Intermolecular Dearomatization of Arenes by an Acyclic Iminosilylene.

J Am Chem Soc

Department of Chemistry, WACKER-Institute of Silicon Chemistry and Catalysis Research Center, Technische Universität München, Lichtenbergstraße 4, 85748 Garching bei München, Germany.

Published: January 2023


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Article Abstract

A novel nontransient acyclic iminosilylene (), bearing a bulky super silyl group (-SiBu) and -heterocyclic imine ligand with a methylated backbone, was prepared and isolated. The methylated backbone is the feature of that distinguishes it from the previously reported nonisolable iminosilylenes, as it prevents the intramolecular silylene center insertion into an aromatic C-C bond of an aryl substituent. Instead, exhibits an intermolecular Büchner-ring-expansion-type reactivity; the silylene is capable of dearomatization of benzene and its derivatives, giving the corresponding silicon analogs of cycloheptatrienes, . silepins, featuring seven-membered SiC rings with nearly planar geometry. The ring expansion reactions of with benzene and 1,4-bis(trifluoromethyl)benzene are reversible. Similar reactions of with -heteroarenes (pyridine and DMAP) proceed more rapidly and irreversibly forming the corresponding azasilepins, also with nearly planar seven-membered SiNC rings. DFT calculations reveal an ambiphilic nature of that allows the intermolecular aromatic C-C bond insertion to occur. Additional computational studies, which elucidate the inherent reactivity of , the role of the substituent effect, and reaction mechanisms behind the ring expansion transformations, are presented.

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http://dx.doi.org/10.1021/jacs.2c10467DOI Listing

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Room Temperature Intermolecular Dearomatization of Arenes by an Acyclic Iminosilylene.

J Am Chem Soc

January 2023

Department of Chemistry, WACKER-Institute of Silicon Chemistry and Catalysis Research Center, Technische Universität München, Lichtenbergstraße 4, 85748 Garching bei München, Germany.

A novel nontransient acyclic iminosilylene (), bearing a bulky super silyl group (-SiBu) and -heterocyclic imine ligand with a methylated backbone, was prepared and isolated. The methylated backbone is the feature of that distinguishes it from the previously reported nonisolable iminosilylenes, as it prevents the intramolecular silylene center insertion into an aromatic C-C bond of an aryl substituent. Instead, exhibits an intermolecular Büchner-ring-expansion-type reactivity; the silylene is capable of dearomatization of benzene and its derivatives, giving the corresponding silicon analogs of cycloheptatrienes, .

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From Si(II) to Si(IV) and Back: Reversible Intramolecular Carbon-Carbon Bond Activation by an Acyclic Iminosilylene.

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June 2017

WACKER-Chair of Macromolecular Chemistry, ∥WACKER-Institute of Silicon Chemistry, ‡Catalysis Research Center, Technische Universität München, Lichtenbergstraße 4, 85748 Garching bei München, Germany.

Reversibility is fundamental for transition metal catalysis, but equally for main group chemistry and especially low-valent silicon compounds, the interplay between oxidative addition and reductive elimination is key for a potential catalytic cycle. Herein, we report a highly reactive acyclic iminosilylsilylene 1, which readily performs an intramolecular insertion into a C═C bond of its aromatic ligand framework to give silacycloheptatriene (silepin) 2. UV-vis studies of this Si(IV) compound indicated a facile transformation back to Si(II) at elevated temperatures, further supported by density functional theory calculations and experimentally demonstrated by isolation of a silylene-borane adduct 3 following addition of B(CF).

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