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April 13, 2026Industrial & Engineering Chemistry Research1 citations

Rational Regulation of the Linkage Polarity in Imine-Linked Covalent Organic Frameworks for Efficient Photocatalytic Nitrogen Reduction to Ammonia

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HLHao LuoHWHao WangMLMei Li

Key Points

  • The study aims to improve photocatalytic nitrogen reduction to ammonia by modifying the linkage polarity in imine-linked COFs.
  • Protonation, oxidation, and methylation of C═N linkages in COFs TA-BT
  • Creation of three novel polarized COFs: TA-BT-H, TA-BT-O, and TA-BT-I
  • Assessment of NH3 yield rates without sacrificial agents or cocatalysts
  • NH3 yield rates for TA-BT-H, TA-BT-O, and TA-BT-I reached 376.5, 498.2, and 320.8 μmol g–1 h–1, respectively
  • All modified COFs showed higher yields compared to pristine TA-BT (185.6 μmol g–1 h–1)
  • Polarized COFs exhibited lower exciton binding energy and enhanced N2 adsorption and activation

Abstract

Imine-linked covalent organic frameworks (COFs) have gained considerable attention for photocatalytic reduction of nitrogen (N2) to ammonia (NH3). However, the intrinsic polarization of the linking C═N bonds leads to a high energy barrier for π-electron delocalization, giving rise to high exciton binding energy and slow charge separation/transfer efficiency. In this study, the C═N linkages of the imine-linked COFs TA-BT were intentionally protonated, oxidized, and methylated by a facile postmodification strategy, thereby yielding three novel polarized COFs with different linkage polarity, namely, TA-BT-H, TA-BT-O, and TA-BT-I. The resulting COFs exhibit a higher dielectric constant and lower exciton binding energy as compared to pristine TA-BT, accelerating charge separation/transfer. Without adding sacrificial agents or cocatalysts, the NH3 yield rates of TA-BT-H, TA-BT-O, and TA-BT-I reach 376.5, 498.2, and 320.8 μmol g–1 h–1, significantly higher than pristine TA-BT (185.6 μmol g–1 h–1) and surpassing most previously reported photocatalysts. The mechanism study indicates that the polarized COFs have undergone an alteration in the N2 adsorption sites, thereby enhancing adsorption and activation. Furthermore, the N2 reduction pathway favors an alternating hydrogenation mechanism. This finding highlights the significant potential of the linkage polarity in imine-linked COFs for photocatalytic N2 reduction to NH3.

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Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/69dc88303afacbeac03ea0dehttps://doi.org/10.1021/acs.iecr.6c00312
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