A Metal‐Organic Polyhedron‐to‐Coordination Polymer Transition Revealed by 3D Electron Diffraction

M Matthew P. Snelgrove (Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK) B Beatriz Doñagueda Suso (Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK) C Calum S. Sangster (School of Chemistry and Centre for Science at Extreme Conditions) K Khadija Asif E Emma Regincós Martí (Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK) D David J. Ashworth (Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK) J Jeremiah P. Tidey (Department of Physics University of Warwick Gibbet Hill Road Coventry CV4 7AL UK) J José R. B. Gomes (Department of Chemistry CICECO‐Aveiro Institute of Materials, University of Aveiro Aveiro 3810‐193 Portugal) M Miguel Jorge (Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK) A Alan R. Kennedy (Department of Pure and Applied Chemistry, University of Strathclyde, 295 Cathedral Street, Glasgow G1 1XL, U.K.) S Simon Parsons (School of Chemistry and Centre for Science at Extreme Conditions) A Ashleigh J. Fletcher (Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK) G Gavin A. Craig (Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK)

Abstract

AbstractPorous metal‐organic polyhedra (MOPs) have strong covalent and coordinate bonds that define the intrinsic pore of the cage. The intermolecular interactions between cages tend to be weaker, such that they rearrange during the solvent exchange process preceding gas sorption measurements. The reduction in crystal size that this often causes limits the availability of structural data that could enable understanding of observed gas uptake. Herein, we use 3D electron diffraction (ED) to resolve this problem, and apply this technique to a MOP‐based material that shows cooperative gas capture. 3D ED structure solution reveals both that the MOPs rearrange to form porous 1D polymers, and that these polymers are retained in the activated phase. Molecular simulations using these data suggest gas uptake is facilitated by rotation of functional groups appended to the backbone of the polymers in conjunction with structural expansion as gas is accommodated. Mechanical downsizing of the material leads to the loss of cooperative gas uptake, but a level of porosity is retained, attributed to the conservation of the 1D polymer structure. This work underscores the potential of 3D ED for probing structural transformations in functional supramolecular materials.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

M

Matthew P. Snelgrove

Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK

B

Beatriz Doñagueda Suso

Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK

C

Calum S. Sangster

School of Chemistry and Centre for Science at Extreme Conditions

K

Khadija Asif

E

Emma Regincós Martí

Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK

D

David J. Ashworth

Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK

J

Jeremiah P. Tidey

Department of Physics University of Warwick Gibbet Hill Road Coventry CV4 7AL UK

J

José R. B. Gomes

Department of Chemistry CICECO‐Aveiro Institute of Materials, University of Aveiro Aveiro 3810‐193 Portugal

M

Miguel Jorge

Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK

A

Alan R. Kennedy

Department of Pure and Applied Chemistry, University of Strathclyde, 295 Cathedral Street, Glasgow G1 1XL, U.K.

S

Simon Parsons

School of Chemistry and Centre for Science at Extreme Conditions

A

Ashleigh J. Fletcher

Department of Chemical and Process Engineering University of Strathclyde Glasgow G1 1XJ UK

G

Gavin A. Craig

Department of Pure and Applied Chemistry University of Strathclyde Glasgow G1 1RX UK