Cobalt‐Catalyzed Deoxygenative Coupling of Ethers to Alkanes

M Manas Kumar Sahu (School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India) S Sandip Pattanaik (School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India) G Gaurav Joshi E Eluvathingal D. Jemmis (Department of Inorganic and Physical Chemistry Indian Institute of Science (IISc) Bengaluru 560012 India) C Chidambaram Gunanathan (School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India)

Abstract

Abstract Alkanes have extensive applications in diverse fields and their natural abundance is dwindling. Ethers are prevalently present in biomolecules and synthetic compounds; however, despite recent progress in their transformations they are considered as unreactive functionalities, and widely used as solvents in transition metal‐catalyzed reactions. Hence, catalytic synthesis of alkanes from bio‐ample ethers is highly desirable. A simple cobalt‐catalyzed double C–O bond activation of ethers is attained now; diverse symmetrical and unsymmetrical arylmethyl ethers (ArCH 2 OCH 2 Ar′) are selectively transformed to 1,2‐diaryl alkanes. This protocol is extended toward unsymmetrical arylmethyl alkyl ethers which furnished linear alkyl arenes. Synthesis of biologically active compounds is also achieved utilizing this catalytic method. Consumption of ethers in catalytic deoxygenative coupling to alkanes follows first‐order kinetics. Mechanistic studies indicate that the reactions proceed through molecular intermediates and involve arylmethyl and alkyl radicals. DFT analysis reveals that the in situ generated radical either abstracts a proton from silane, resulting in C–H bond formation or attacks the aryl silyl ether, leading to C–C coupling. The reaction mechanism involves intermediates with different spin multiplicities and spin crossover through minimum energy crossing points (MECPs).

Article Details

Volume / Issue Vol. 65, Issue 3
Published January 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

M

Manas Kumar Sahu

School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India

S

Sandip Pattanaik

School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India

G

Gaurav Joshi

E

Eluvathingal D. Jemmis

Department of Inorganic and Physical Chemistry Indian Institute of Science (IISc) Bengaluru 560012 India

C

Chidambaram Gunanathan

School of Chemical Sciences National Institute of Science Education and Research (NISER) An OCC of Homi Bhabha National Institute Bhubaneswar 752050 India