MgAlO t Bu Catalyzed Synthesis of Oxaziridines

Abstract A sustainable oxidation protocol for the synthesis of oxaziridines from aldimines is described using hydrotalcite as a recyclable heterogeneous catalyst and hydrogen peroxide as a green oxidant. This operationally simple method proceeds under mild heating and avoids the need for chlorinated oxidants or metal-based reagents traditionally employed for imine oxidation. Across 25 representative substrates, including both aromatic and aliphatic aldimines, the transformation delivers the corresponding oxaziridines in yields up to 90%. The hydrotalcite catalyst can be readily recovered by filtration and reused with minimal loss of activity. Together, these features establish a practical, scalable, and environmentally conscious approach to oxaziridine synthesis that expands the toolbox of green nitrogen-transfer chemistry. Method optimization, scope, and limitations are discussed.

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Publication Details

Journal
ACS Omega
Published
2026-09-29
DOI
https://doi.org/10.1021/acsomega.6c07428
Primary Topic
Organic Chemistry Cycloaddition Reactions
Type
article
Field-Weighted Citation Impact
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article

MgAlO t Bu Catalyzed Synthesis of Oxaziridines

Rashanique D. Quarels, Prinsee R. Patel, Nicholas J. Lahr, DaEisha N. Robinson et al.
ACS Omega
Organic Chemistry Cycloaddition Reactions
article

MgAlO t Bu Catalyzed Synthesis of Oxaziridines

Rashanique D. Quarels, Prinsee R. Patel, Nicholas J. Lahr, DaEisha N. Robinson, Autumn J. Vossler, Chrishene R. B. Mapitigama
article en

Abstract

Abstract A sustainable oxidation protocol for the synthesis of oxaziridines from aldimines is described using hydrotalcite as a recyclable heterogeneous catalyst and hydrogen peroxide as a green oxidant. This operationally simple method proceeds under mild heating and avoids the need for chlorinated oxidants or metal-based reagents traditionally employed for imine oxidation. Across 25 representative substrates, including both aromatic and aliphatic aldimines, the transformation delivers the corresponding oxaziridines in yields up to 90%. The hydrotalcite catalyst can be readily recovered by filtration and reused with minimal loss of activity. Together, these features establish a practical, scalable, and environmentally conscious approach to oxaziridine synthesis that expands the toolbox of green nitrogen-transfer chemistry. Method optimization, scope, and limitations are discussed.

ACS Omega
Rowan University (US)
Responsible consumption and production
Openalex Percentile: Top 22%
Organic Chemistry Cycloaddition Reactions
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