Deoxyhalogenation with Cu(III) Halide Complexes

Abstract While high-valent metal–halide complexes are widely studied as oxidants that promote C–H activation, their Lewis acidic reactivity has received little attention. Herein, we report a new mode of Cu(III) reactivity in which Lewis acidic Cu(III) complexes activate C(sp3)–OH bond in alcohols and convert them to the corresponding alkyl fluorides, chlorides, and bromides. A series of formal Cu(III) halide complexes (X = F, Cl, Br) supported by the tris(2-pyridylthio)methanide (TPTM, L) ligand were synthesized. These trigonal-bipyramidal [LCuIII–X]+ complexes feature an anionic carbon donor trans to the halide, resulting in weakened Cu–X bonds. Unlike conventional Cu(III) complexes that typically promote hydrogen atom abstraction, [LCuIII–X]+ instead activates the C(sp3)–OH bond for deoxyhalogenation. Mechanistic studies suggest that the reaction proceeds through initial activation of the C(sp3)–OH bond by the Lewis acidic CuIII center to generate a carbocation intermediate, which is subsequently trapped by halides to form the C(sp3)–X bond. While Lewis acid-promoted deoxychlorination and deoxybromination reactions have been reported previously, this study represents the first example of a metal complex capable of mediating a general deoxyhalogenation series including F, Cl, and Br transfer.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-09-14
DOI
https://doi.org/10.1021/acs.inorgchem.6c03041
Primary Topic
Catalytic C–H Functionalization Methods
Type
article
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Deoxyhalogenation with Cu(III) Halide Complexes

Shiyu Zhang, Ashleigh N. Sherman, Abigail M. Houser, Joshua A. Queener
Inorganic Chemistry
Catalytic C–H Functionalization Methods
article

Deoxyhalogenation with Cu(III) Halide Complexes

Shiyu Zhang, Ashleigh N. Sherman, Abigail M. Houser, Joshua A. Queener
article en

Abstract

Abstract While high-valent metal–halide complexes are widely studied as oxidants that promote C–H activation, their Lewis acidic reactivity has received little attention. Herein, we report a new mode of Cu(III) reactivity in which Lewis acidic Cu(III) complexes activate C(sp3)–OH bond in alcohols and convert them to the corresponding alkyl fluorides, chlorides, and bromides. A series of formal Cu(III) halide complexes (X = F, Cl, Br) supported by the tris(2-pyridylthio)methanide (TPTM, L) ligand were synthesized. These trigonal-bipyramidal [LCuIII–X]+ complexes feature an anionic carbon donor trans to the halide, resulting in weakened Cu–X bonds. Unlike conventional Cu(III) complexes that typically promote hydrogen atom abstraction, [LCuIII–X]+ instead activates the C(sp3)–OH bond for deoxyhalogenation. Mechanistic studies suggest that the reaction proceeds through initial activation of the C(sp3)–OH bond by the Lewis acidic CuIII center to generate a carbocation intermediate, which is subsequently trapped by halides to form the C(sp3)–X bond. While Lewis acid-promoted deoxychlorination and deoxybromination reactions have been reported previously, this study represents the first example of a metal complex capable of mediating a general deoxyhalogenation series including F, Cl, and Br transfer.

Inorganic Chemistry
The Ohio State University (US)
Clean water and sanitation
Openalex Percentile: Top 20%
Catalytic C–H Functionalization Methods
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Deoxyhalogenation with Cu(III) Halide Complexes — Shiyu Zhang, Ashleigh N. Sherman, et al. · Inorganic Chemistry (2026) | TGRS Research Map | TGRS