Deprotonative C( <i>sp</i> <sup>3</sup> )/C( <i>sp</i> <sup>2</sup> )–H (Multi)Silylation of (Hetero)Arenes Mediated by NaTMP

D David Sánchez‐Roa (Department Für Chemie, Biochemie und Pharmacie Universität Bern Bern Switzerland) S Sophia Belrhomari (Department Für Chemie, Biochemie und Pharmacie Universität Bern Bern Switzerland) A Ana McGinley (School of Chemistry, Trinity College Dublin, College Green, Dublin 2, Ireland) C Clevin Anto Liju (School of Chemistry Trinity College Dublin College Green Dublin 2 Ireland) M Manting Mu (School of Chemistry, Trinity College Dublin, College Green, Dublin 2, Ireland) M Max García‐Melchor (School of Chemistry Trinity College Dublin College Green Dublin 2 Ireland) E Eva Hevia (Departement für Chemie, Biochemie und Pharmazie, Universität Bern, Freistrasse 3, Bern 3012, Switzerland)

Abstract

ABSTRACT The importance of organosilicon compounds in synthetic and materials chemistry has prompted the search for efficient and broadly applicable routes to these invaluable scaffolds, which often depend on scarce transition metals. In contrast, main group‐mediated strategies remain underdeveloped, with those reported generally limited to activated substrates and harsh reaction conditions. Here, a new sodium‐mediated protocol for deprotonative C( sp 3 )/C( sp 2 )–H silylation of (hetero)arenes is presented, which relies on the power of the strongly basic sodium amide NaTMP (TMP = 2,2,6,6‐tetramethylpiperidide) in combination with bulky chlorosilanes. This approach provides direct access to a myriad of silylated aromatic products, including toluene derivatives, non‐activated arenes such as benzene and naphthalene, pyridines and electron‐rich heterocycles. Mechanistic investigations, combining the isolation of key organometallic intermediates with theoretical calculations, underline the complementarity of NaTMP and the electrophilic chlorosilane, and reveal the steric and coordination effects that govern sodiation and silylation steps. Most notably, this protocol extends beyond conventional monosilylation, including orthogonal multisilylation of distinct C( sp 3 ) and C( sp 2 )–H bonds, thereby broadening the scope of main group‐mediated arene functionalization.

Article Details

Volume / Issue Vol. 65, Issue 21
Published May 18, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

D

David Sánchez‐Roa

Department Für Chemie, Biochemie und Pharmacie Universität Bern Bern Switzerland

S

Sophia Belrhomari

Department Für Chemie, Biochemie und Pharmacie Universität Bern Bern Switzerland

A

Ana McGinley

School of Chemistry, Trinity College Dublin, College Green, Dublin 2, Ireland

C

Clevin Anto Liju

School of Chemistry Trinity College Dublin College Green Dublin 2 Ireland

M

Manting Mu

School of Chemistry, Trinity College Dublin, College Green, Dublin 2, Ireland

M

Max García‐Melchor

School of Chemistry Trinity College Dublin College Green Dublin 2 Ireland

E

Eva Hevia

Departement für Chemie, Biochemie und Pharmazie, Universität Bern, Freistrasse 3, Bern 3012, Switzerland