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A metal-organic polyhedron-to-coordination polymer transition revealed by 3D electron diffraction

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Abstract

Porous 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.
Original languageEnglish
Article numbere202514527
Number of pages8
JournalAngewandte Chemie International Edition
Volume64
Issue number43
Early online date6 Sept 2025
DOIs
Publication statusPublished - 20 Oct 2025

Funding

M.P.S., A.J.F., and G.A.C. thank the Leverhulme Trust for the award of the Leverhulme Trust Research Project Grant RPG\u20102022\u2010004. E.R.M., A.J.F., and G.A.C. thank the Leverhulme Trust for the award of the Leverhulme Trust Research Project Grant RPG\u20102022\u2010173. B.D.S. and G.A.C. thank the University of Strathclyde for the award of a 3\u2010year PhD studentship to B.D.S. SP thanks the Leverhulme Trust for the Research Project Grant RPG\u20102021\u2010176, and EPSRC for studentship funding for C.S.S. K.A. and M.J. thank EPSRC and the National Physical Laboratory for the award of an iCASE PhD studentship (ref. EP/Y528833/1). G.A.C. thanks ScotCHEM for the award of the ScotCHEM ECR equipment funding call 2022, which supported the purchase of the ball mill used in this study. G.A.C and M.P.S. thank Dr Catherine E. Weetman for experimental assistance in activating samples for PXRD measurements. The authors acknowledge that the powder X\u2010ray diffraction data were collected in the CMAC National Facility, within the University of Strathclyde's Technology and Innovation Centre, funded with a UKRPIF (UK Research Partnership Institute Fund) capital award, SFC ref. H13054, from the Higher Education Funding Council for England (HEFCE). J.R.B.G. is thankful to project CICECO\u2010Aveiro Institute of Materials, refs. UIDB/50011/2020, UIDP/50011/2020 and LA/P/0006/2020, financed by national funds through the FCT/MCTES (PIDDAC). The authors thank the NCS for granting rapid access to the National Electron Diffraction Facility under EPSRC funding (EP/X014606/1 & EP/X014444/1, A National Electron Diffraction Facility for Nanomaterial Structural Studies), as well as the University of Warwick X\u2010ray Research Technology Platform for provision of further analysis facilities.

Keywords

  • 3D electron diffraction
  • porous materials
  • metal-organic polyhedra
  • molecular simulation
  • supramolecular chemistry

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