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Guest-mediated phase transitions in a flexible pillared-layered metal-organic framework under high-pressure.
Turner, Gemma F; McKellar, Scott C; Allan, David R; Cheetham, Anthony K; Henke, Sebastian; Moggach, Stephen A.
Affiliation
  • Turner GF; School of Molecular Sciences, University of Western Australia Perth 6009 Western Australia Australia stephen.moggach@uwa.edu.au.
  • McKellar SC; EastChem School of Chemistry, University of Edinburgh Edinburgh EH9 3JW UK.
  • Allan DR; Diamond Light Source, Harwell Science and Innovation Campus Didcot O11 ODE UK.
  • Cheetham AK; Materials Research Laboratory, University of California Santa Barbara CA 93106 USA.
  • Henke S; Fakultät für Chemie und Chemische Biologie, Technische Universität Dortmund Dortmund 44227 Germany sebastian.henke@tu-dortmund.de.
  • Moggach SA; School of Molecular Sciences, University of Western Australia Perth 6009 Western Australia Australia stephen.moggach@uwa.edu.au.
Chem Sci ; 12(41): 13793-13801, 2021 Oct 27.
Article in En | MEDLINE | ID: mdl-34760164
ABSTRACT
The guest-dependent flexibility of the pillared-layered metal-organic framework (MOF), Zn2bdc2dabco·X(guest), where guest = EtOH, DMF or benzene, has been examined by high-pressure single crystal X-ray diffraction. A pressure-induced structural phase transition is found for the EtOH- and DMF-included frameworks during compression in a hydrostatic medium of the guest species, which is dependent upon the nature and quantity of the guest in the channels. The EtOH-included material undergoes a phase transition from P4/mmm to C2/m at 0.69 GPa, which is accompanied by a change in the pore shape from square to rhombus via super-filling of the pores. The DMF-included material undergoes a guest-mediated phase transition from I4/mcm to P4/mmm at 0.33 GPa via disordering of the DMF guest. In contrast, the benzene-included framework features a structure with rhombus-shaped channels at ambient pressure and shows direct compression under hydrostatic pressure. These results demonstrate the large influence of guest molecules on the high-pressure phase behavior of flexible MOFs. Guest-mediated framework flexibility is useful for engineering MOFs with bespoke pore shapes and compressibility.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2021 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2021 Type: Article