Modular synthesis of 3,3-diaryloxetanes

Abstract Oxetanes are strained four-membered oxygen heterocycles that are valuable motifs for modulating lipophilicity, metabolic stability and three-dimensional structure of pharmaceuticals. Diaryloxetanes with 3,3-substitution are recognized as bioisosteres of diaryl ketones that preserve key electronic features while exhibiting distinct reactivity. However, synthesis of this motif largely relies on Lewis acid-promoted Friedel–Crafts reactions, which are restricted to electron-rich arenes and often suffer from low functional-group tolerance and competing side reactions. Here we report a method for the synthesis of 3,3-substituted diaryloxetanes from readily available 3-oxetanone through a cross-coupling reaction with tetrafluoropyridone as leaving group. The difunctionalization through subsequent addition of two aryl groups, one from an aryl halide, the other from an arylboronic ester, provides access to a variety of benzophenone bioisosteres. The nickel-catalysed cross-coupling at a fully substituted carbon centre is enabled through oxetanyl C–O bond oxidative addition and establishes programmable entry to 3,3-diaryloxetane bioisosteres that are synthetically challenging to access via traditional polar bond disconnection strategies. Mechanistic studies support a Ni(0)-mediated oxidative addition of the oxetanyl tetrafluoropyridine ester.

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Publication Details

Journal
Nature Synthesis
Published
2026-10-08
DOI
https://doi.org/10.1038/s44160-026-01183-5
Primary Topic
Catalytic Cross-Coupling Reactions
Type
article
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article

Modular synthesis of 3,3-diaryloxetanes

Tobias Ritter, J.P. Liu, Qikai Sun
Nature Synthesis
Catalytic Cross-Coupling Reactions
article

Modular synthesis of 3,3-diaryloxetanes

Tobias Ritter, J.P. Liu, Qikai Sun
article en

Abstract

Abstract Oxetanes are strained four-membered oxygen heterocycles that are valuable motifs for modulating lipophilicity, metabolic stability and three-dimensional structure of pharmaceuticals. Diaryloxetanes with 3,3-substitution are recognized as bioisosteres of diaryl ketones that preserve key electronic features while exhibiting distinct reactivity. However, synthesis of this motif largely relies on Lewis acid-promoted Friedel–Crafts reactions, which are restricted to electron-rich arenes and often suffer from low functional-group tolerance and competing side reactions. Here we report a method for the synthesis of 3,3-substituted diaryloxetanes from readily available 3-oxetanone through a cross-coupling reaction with tetrafluoropyridone as leaving group. The difunctionalization through subsequent addition of two aryl groups, one from an aryl halide, the other from an arylboronic ester, provides access to a variety of benzophenone bioisosteres. The nickel-catalysed cross-coupling at a fully substituted carbon centre is enabled through oxetanyl C–O bond oxidative addition and establishes programmable entry to 3,3-diaryloxetane bioisosteres that are synthetically challenging to access via traditional polar bond disconnection strategies. Mechanistic studies support a Ni(0)-mediated oxidative addition of the oxetanyl tetrafluoropyridine ester.

Nature Synthesis
Openalex Percentile: Top 25%
Catalytic Cross-Coupling Reactions
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Modular synthesis of 3,3-diaryloxetanes — Tobias Ritter, J.P. Liu, et al. · Nature Synthesis (2026) | TGRS Research Map | TGRS