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February 28, 2026Journal of the American Chemical Society2 citations

Redox- and Protonation-Tunable Diboraheptacenes

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JHJinhyo HwangHKHeechan KimJSJoão V. Schober

Key Points

  • The research aims to investigate the redox and protonation chemistry of diboraheptacenes and their electronic properties.
  • Synthesis and structural characterization of diboraheptacenes
  • Generation of radical anions and dianions
  • Examination of electronic transitions and photophysical properties
  • Reactivity studies with CO2, acrylonitrile, and H2O
  • Diboraheptacenes exhibit small HOMO-LUMO gaps and significant NIR absorption at 951 nm.
  • Red fluorescence was observed at 682 nm, indicating low-energy electronic transitions.
  • Cycloaddition products were generated from reactions of diboraheptacenes with CO2 and acrylonitrile.
  • A hydroxylated product was formed when diboraheptacenes reacted with H2O.

Abstract

Acenes are attractive molecular platforms with characteristic π-electron delocalization, resulting in exceptionally small HOMO-LUMO gaps, which makes them valuable for use in a variety of organic electronics. Incorporating heteroatoms into the backbones of acenes enables systematic tuning of their electronic structures and introduces well-defined sites for redox and protonation chemistry. However, the redox chemistry of boron-doped higher acenes remains poorly understood. Herein, we report the synthesis, structural characterization, and multistate redox and protonation chemistry of a series of diboraheptacenes. Starting from tetrahydrodiboraheptacene (1), the corresponding radical anion (1•-) was generated via one-electron reduction. The fully aromatized diborataheptacene dianion (22-) was accessed via double deprotonation, which represents the first diboron-doped π-isostere of all-hydrocarbon heptacene. Two-electron oxidation of 22- gave a neutral quinodimethane (2) that is isoelectronic with the heptacene dication, demonstrating redox-interconversion between benzenoid and quinoidal structures. Dianion 22-, isoelectronic to heptacene, features NIR absorption at λabs = 951 nm, reflecting its exceptionally small HOMO-LUMO gap. In addition, 2 shows remarkable low-energy electronic transitions, displaying red fluorescence (λem = 682 nm). Furthermore, reactions of 22- with CO2 or acrylonitrile yield cycloaddition products, while the reaction with H2O affords a hydroxylated diboraheptacene dianion. These results establish redox- and protonation-state-dependent electronic structures, photophysical properties, and reactivity of an extended diboraacene platform.

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Cite This Study

Hwang et al. (2026) studied this question.

synapsesocial.com/papers/69a286720a974eb0d3c01728https://doi.org/10.1021/jacs.5c21449
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