Issue 31, 2023

In situ growth of Zn-based metal–organic frameworks in ultra-high surface area nano-wood aerogel for efficient CO2 capture and separation

Abstract

Metal–organic frameworks (MOFs) combined with wood-based templates have drawn growing interest in the field of CO2 capture and separation. However, the low MOFs loadings of these composites adversely limit their performance. In this study, a novel wood-based template with a nanocellulose aerogel network structure and natural wood anisotropy was prepared by dissolution-regeneration followed by 2,2,6,6-tetramethylpiperidin-1-oxyl (TEMPO)-mediated oxidation. These TEMPO-nanocellulose networks have large numbers of polar groups in the TEMPO-oxidized regenerated wood (TRW) which can generate stronger interaction forces between the added metal ions (Zn2+). This improves the loading of MOFs into the composite. It also causes lower MOF aggregation in TRW. Three MOFs of different crystal size (Zn-MOF-74, ZIF-7-NH2 and ZIF-8-NH2) were synthesized in situ within TRW using different organic ligands, and designated as TRW/Z-74, TRW/Z-7N, and TRW/Z-8N. TRW/Z-74 exhibited a high CO2 adsorption capacity (2.59 mmol g−1) at 298 K, 106 kPa (1.06 bar). Even after 7 recycles, their CO2 adsorption capacity still remained at 95% of its original value. A selectivity of TRW/Z-74 for CO2 in a CO2/N2 (15%/85%) gas mixture up to 49 was calculated by ideal adsorption solution theory (IAST). In addition, TRW/Z-74 had good yield strengths in compression tests along the longitudinal axis. CO2 uptake tests proved the scalability of TRW as a template for different metal based-MOFs. TRW/Mg-MOF-74 (4.97 mmol g−1) and TRW/Co-MOF-74 (3.37 mmol g−1) exceeded that of TRW/Zn-MOF-74 (2.59 mmol g−1) at 298 K and 106 kPa. Thus, this study provides a novel strategy for the synthesis of wood-based MOF composites, also achieves a sustainable and efficient capture and separation of CO2.

Graphical abstract: In situ growth of Zn-based metal–organic frameworks in ultra-high surface area nano-wood aerogel for efficient CO2 capture and separation

  • This article is part of the themed collection: #MyFirstJMCA

Supplementary files

Article information

Article type
Paper
Submitted
13 Apr 2023
Accepted
25 Jul 2023
First published
26 Jul 2023

J. Mater. Chem. A, 2023,11, 16878-16888

In situ growth of Zn-based metal–organic frameworks in ultra-high surface area nano-wood aerogel for efficient CO2 capture and separation

J. Huang, D. Yang, Z. Hu, H. Zhang, Z. Zhang, F. Wang, Y. Xie, S. Liu, Q. Wang and C. U. Pittman, J. Mater. Chem. A, 2023, 11, 16878 DOI: 10.1039/D3TA02229C

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