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February 16, 2026Nature Communications5 citationsOpen Access

Single-crystal 2D covalent organic frameworks for high-capacity methane storage

BYBaoqiu YuFOFelipe L. OliveiraWLWenliang Li

Key Points

  • The aim is to develop single-crystal 2D covalent organic frameworks with high porosity for methane storage.
  • Utilized a substituent strategy to create robust single-crystal 2D COF isomers.
  • Determined atom-resolution structures using 3D electron diffraction.
  • Engineered interlayer distances to enhance surface area and pore volume.
  • Achieved a surface area of ~2100 m²/g for the optimized COF isomer GZU-1.
  • Attained a pore volume of 1.40 cm³/g for GZU-1.
  • Measured the highest volumetric methane uptake of 240 cm³ (STP)/cm³ at 273 K and 100 bar among 2D COFs.

Abstract

Abstract 2D covalent organic frameworks (COFs) usually possess a polycrystalline nature as well as lower porosity and surface area than 3D counterparts, restraining their exploration over gas storage applications. Herein, a substituent strategy has been proposed and employed to generate three robust single-crystal 2D COFs isomers with atom-resolution structures determined by 3D electron diffraction. Among three isomers, a precise engineering of their interlayer distance affords the highest Brunauer−Emmett−Teller surface area of ~2100 m 2 g −1 and the largest pore volume of 1.40 cm 3 g −1 for the desolvated GZU-1. This COF shows the highest total volumetric methane uptake of 240 cm 3 (STP) cm −3 at 273 K and 100 bar among 2D COFs, even comparable with those for excellent 3D MOFs. This work not only delivers unique insight into the design of 2D single-crystal COFs by interlayer stacking regulation, but also promotes the application of highly porous 2D COFs in gas storage.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/6992b42c9b75e639e9b091afhttps://doi.org/10.1038/s41467-026-69614-7
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