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April 26, 2026Nature Chemistry4 citationsOpen Access

Reactions of diazoboranes with oxygen enables the synthesis and isolation of dioxaboriranes

CZChonghe ZhangJWJunyi WangNMNoah D. McMillion

Key Points

  • This research focuses on the synthesis of cyclic peroxides from diazoboranes and molecular oxygen.
  • Reactions of diazoboranes with triplet oxygen were conducted under mild conditions.
  • Cyclic dioxaboriranes were isolated, including both neutral and anionic forms.
  • Computational studies were employed to analyze the formation of these compounds.
  • Neutral dioxaboriranes act as electrophilic oxygen-atom donors, while anionic variants are nucleophilic and react with carbon dioxide.
  • Cyclic dioxaboriranes can be converted into acyclic boron peroxide derivatives, demonstrating controllable reactivity.
  • Thermal formation of boron peroxides was confirmed, differing from dioxiranes that need photochemical methods.

Abstract

Cyclic peroxides are highly reactive oxygen-containing species that play important roles in chemical synthesis, yet, aside from dioxiranes (R2CO2), well-defined cyclic peroxides of main-group elements remain rare. In particular, cyclic peroxides featuring boron–oxygen frameworks have not been explored. Here we show that boron peroxides can be prepared directly from accessible boron precursors and molecular oxygen under mild conditions. Specifically, reactions of diazoboranes with triplet oxygen afford a family of cyclic dioxaboriranes, including both neutral and anionic variants. These compounds exhibit distinct reactivity: neutral species behave as electrophilic oxygen-atom donors, whereas the anionic analogue is nucleophilic and reacts with carbon dioxide. Computational studies explain why these boron peroxides form thermally, in contrast to dioxiranes that require strict photochemical control. Finally, we show that cyclic dioxaboriranes can be converted into acyclic boron peroxide derivatives, highlighting opportunities for controlling peroxide structure and reactivity at boron. Cyclic peroxides are highly reactive oxygen-containing species that play important roles in chemical synthesis. Now, the reaction between diazoboranes and triplet oxygen affords a family of cyclic dioxaboriranes, including both neutral and anionic variants. Neutral species behave as electrophilic oxygen-atom donors, whereas anionic analogues are nucleophilic and react with carbon dioxide.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69edac9b4a46254e215b4612https://doi.org/10.1038/s41557-026-02120-x
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