Unraveling metal effects on CO2 uptake in pyrene-based metal-organic frameworks

N Nency P. Domingues M Miriam J. Pougin Y Yutao Li (Beijing National Laboratory for Condensed Matter Physics) E Elias Moubarak X Xin Jin F F. Pelin Uran A Andres Ortega-Guerrero (nanotech@surfaces Laboratory, Empa─Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland) C Christopher P. Ireland P Pascal Schouwink (X-ray Diffraction and Surface Analytics Platform) C Christian Schürmann J Jordi Espín E Emad Oveisi (Interdisciplinary Centre for Electron Microscopy (CIME)) F Fatmah Mish Ebrahim W Wendy Lee Queen B Berend Smit (Laboratory of Molecular Simulation (LSMO), Institut des Sciences et Ingénierie Chimiques)

Abstract

Abstract Pyrene-based metal-organic frameworks (MOFs) have tremendous potential for various applications. With infinite structural possibilities, the MOF community often relies on simulations to identify the most promising candidates for given applications. Among thousands of reported structures, many exhibit limited reproducibility — in either synthesis, performance, or both — owing to the sensitivity of synthetic conditions. Geometric distortions that may arise in the functional groups of pyrene-based ligands during synthesis and/or activation cannot easily be predicted. This sometimes leads to discrepancies between in silico and experimental results. Here, we investigate a series of pyrene-based MOFs for carbon capture. These structures share the same ligand (1,3,6,8–tetrakis(p–benzoic acid)pyrene (TBAPy)) but have different metals (M-TBAPy, M = Al, Ga, In, and Sc). The ligands stack parallel in their orthorhombic crystal structure, creating a promising binding site for CO2. As predicted, the metal is shown to affect the pyrene stacking distance and, therefore, the CO2 uptake. Here, we investigate the metal’s intrinsic effects on the MOFs’ crystal structure. Crystallographic analysis shows the emergence of additional phases, which thus impacts the overall adsorption characteristics of the MOFs. Considering these additional phases improves the prediction of adsorption isotherms, enhancing our understanding of pyrene-based MOFs for carbon capture.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 11, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

N

Nency P. Domingues

M

Miriam J. Pougin

Y

Yutao Li

Beijing National Laboratory for Condensed Matter Physics

E

Elias Moubarak

X

Xin Jin

F

F. Pelin Uran

A

Andres Ortega-Guerrero

nanotech@surfaces Laboratory, Empa─Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland

C

Christopher P. Ireland

P

Pascal Schouwink

X-ray Diffraction and Surface Analytics Platform

C

Christian Schürmann

J

Jordi Espín

E

Emad Oveisi

Interdisciplinary Centre for Electron Microscopy (CIME)

F

Fatmah Mish Ebrahim

W

Wendy Lee Queen

B

Berend Smit

Laboratory of Molecular Simulation (LSMO), Institut des Sciences et Ingénierie Chimiques