Ligand design broadens NiI-catalysed C(sp2)–heteroatom couplings of aryl bromides at low catalyst loadings

Abstract The formation of C( sp 2 )–heteroatom bonds through cross-coupling catalysis is central to the synthesis of pharmaceuticals, agrochemicals and materials. Whereas Pd 0 /Pd II catalysis requires substrate-specific ligand optimization to balance the competing demands of oxidative addition and reductive elimination, Ni I /Ni III catalysis offers a complementary strategy because the bond-forming step is intrinsically favourable. However, contemporary Ni I /Ni III methodologies suffer from insufficient oxidative addition reactivity, restricting the aryl halide scope and requiring high catalyst loadings. Here we show that mechanistically guided ligand design overcomes these limitations. Together with a non-nucleophilic base additive that promotes direct visible-light generation of Ni I from a bench-stable Ni II precatalyst, this ligand design enables the coupling of electron-rich aryl bromides with N-, O-, S- and P-based nucleophiles at nickel loadings as low as 100 ppm. The method is compatible with sterically encumbered nucleophiles and enables gram-scale synthesis and late-stage functionalization of complex molecules.

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Journal
Nature Catalysis
Published
2026-09-29
DOI
https://doi.org/10.1038/s41929-026-01616-6
Primary Topic
Catalytic Cross-Coupling Reactions
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article
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article

Ligand design broadens NiI-catalysed C(sp2)–heteroatom couplings of aryl bromides at low catalyst loadings

Haralds Baunis, Daniel Bím, Bartholomäus Pieber, Trisha Banik et al.
Nature Catalysis
Catalytic Cross-Coupling Reactions
article

Ligand design broadens NiI-catalysed C(sp2)–heteroatom couplings of aryl bromides at low catalyst loadings

Haralds Baunis, Daniel Bím, Bartholomäus Pieber, Trisha Banik, Florian Ortis, Aleksander R. Bena, Christos Giannoudis, Gayathri H. Palissery
article en

Abstract

Abstract The formation of C( sp 2 )–heteroatom bonds through cross-coupling catalysis is central to the synthesis of pharmaceuticals, agrochemicals and materials. Whereas Pd 0 /Pd II catalysis requires substrate-specific ligand optimization to balance the competing demands of oxidative addition and reductive elimination, Ni I /Ni III catalysis offers a complementary strategy because the bond-forming step is intrinsically favourable. However, contemporary Ni I /Ni III methodologies suffer from insufficient oxidative addition reactivity, restricting the aryl halide scope and requiring high catalyst loadings. Here we show that mechanistically guided ligand design overcomes these limitations. Together with a non-nucleophilic base additive that promotes direct visible-light generation of Ni I from a bench-stable Ni II precatalyst, this ligand design enables the coupling of electron-rich aryl bromides with N-, O-, S- and P-based nucleophiles at nickel loadings as low as 100 ppm. The method is compatible with sterically encumbered nucleophiles and enables gram-scale synthesis and late-stage functionalization of complex molecules.

Nature Catalysis
Institute of Science and Technology Austria (AT), University of Chemistry and Technology, Prague (CZ)
Openalex Percentile: Top 22%
Catalytic Cross-Coupling Reactions
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Ligand design broadens NiI-catalysed C(sp2)–heteroatom couplings of aryl bromides at low catalyst loadings — Haralds Baunis, Daniel Bím, et al. · Nature Catalysis (2026) | TGRS Research Map | TGRS