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March 3, 2026Chemistry of Materials0 citations

Modulating Pore-Surface Adsorption in Covalent Organic Frameworks for Superior Hydrogen Storage

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ZTZhuozhuo TangJCJia ChenCGChen Gao

Key Points

  • HZ-Si-COF achieves 5.00 wt % H2 uptake at 70 bar, indicating strong hydrogen storage capabilities.
  • The ultramicropores of 0.8 nm enhance pore-surface interactions with hydrogen for better adsorption performance.
  • Microstructural tuning with an N–N-containing hydrazine monomer was key to minimizing pore size and increasing adsorption heat.
  • This work highlights the potential for structural design in advancing covalent organic frameworks for efficient gas storage.

Abstract

Three-dimensional covalent organic frameworks (3D COFs) offer high surface areas and diverse microstructures for gas adsorption, yet their hydrogen storage is limited by weak host–guest interactions in physisorption. Here, we report a microstructural tuning strategy using an N–N-containing hydrazine monomer to simultaneously minimize pore size and enhance pore-surface interactions with hydrogen. The resulting HZ-Si-COF features ultramicropores of 0.8 nm and abundant nitrogen sites with excess charges, which induce H2 polarization and yield a high adsorption heat. Consequently, HZ-Si-COF achieves 2.22 wt % H2 uptake at 77 K and 1 bar and 5.00 wt % at 70 bar, with excellent cycling stability under high pressure. This study demonstrates that strengthening pore-surface induction via structural design is an effective route to improving gas adsorption, providing insights for the development of COFs with superior hydrogen storage capabilities.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69a75d1bc6e9836116a26985https://doi.org/10.1021/acs.chemmater.5c02792
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