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H2/CO2 separations in multicomponent metal-adeninate MOFs with multiple chemically distinct pore environments.
Schulte, Zachary M; Kwon, Yeon Hye; Han, Yi; Liu, Chong; Li, Lin; Yang, Yahui; Jarvi, Austin Gamble; Saxena, Sunil; Veser, Götz; Johnson, J Karl; Rosi, Nathaniel L.
Afiliación
  • Schulte ZM; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Kwon YH; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Han Y; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Liu C; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Li L; Department of Chemical and Petroleum Engineering, University of Pittsburgh Pittsburgh PA 15260 USA.
  • Yang Y; Department of Chemical and Petroleum Engineering, University of Pittsburgh Pittsburgh PA 15260 USA.
  • Jarvi AG; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Saxena S; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
  • Veser G; Department of Chemical and Petroleum Engineering, University of Pittsburgh Pittsburgh PA 15260 USA.
  • Johnson JK; Department of Chemical and Petroleum Engineering, University of Pittsburgh Pittsburgh PA 15260 USA.
  • Rosi NL; Department of Chemistry, University of Pittsburgh Pittsburgh PA 15260 USA nrosi@pitt.edu.
Chem Sci ; 11(47): 12807-12815, 2020 Oct 15.
Article en En | MEDLINE | ID: mdl-34094475
ABSTRACT
Metal-organic frameworks constructed from multiple (≥3) components often exhibit dramatically increased structural complexity compared to their 2 component (1 metal, 1 linker) counterparts, such as multiple chemically unique pore environments and a plurality of diverse molecular diffusion pathways. This inherent complexity can be advantageous for gas separation applications. Here, we report two isoreticular multicomponent MOFs, bMOF-200 (4 components; Cu, Zn, adeninate, pyrazolate) and bMOF-201 (3 components; Zn, adeninate, pyrazolate). We describe their structures, which contain 3 unique interconnected pore environments, and we use Kohn-Sham density functional theory (DFT) along with the climbing image nudged elastic band (CI-NEB) method to predict potential H2/CO2 separation ability of bMOF-200. We examine the H2/CO2 separation performance using both column breakthrough and membrane permeation studies. bMOF-200 membranes exhibit a H2/CO2 separation factor of 7.9. The pore space of bMOF-201 is significantly different than bMOF-200, and one molecular diffusion pathway is occluded by coordinating charge-balancing formate and acetate anions. A consequence of this structural difference is reduced permeability to both H2 and CO2 and a significantly improved H2/CO2 separation factor of 22.2 compared to bMOF-200, which makes bMOF-201 membranes competitive with some of the best performing MOF membranes in terms of H2/CO2 separations.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Chem Sci Año: 2020 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Chem Sci Año: 2020 Tipo del documento: Article