4.8 Article

Welcoming Gallium- and Indium-Fumarate MOFs to the Family: Synthesis, Comprehensive Characterization, Observation of Porous Hydrophobicity, and CO2 Dynamics

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 10, 期 34, 页码 28582-28596

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b08562

关键词

metal-organic frameworks; gas adsorption; X-ray diffraction; solid-state NMR; carbon dioxide; guest dynamics; porous hydrophobicity

资金

  1. Canadian Foundation for Innovation
  2. Natural Sciences and Engineering Research Council of Canada (NSERC)
  3. National Research Council Canada
  4. Canadian Institutes of Health Research
  5. Government of Saskatchewan
  6. Western Economic Diversification Canada
  7. University of Saskatchewan
  8. NSERC
  9. NSERC E.W.R. Steacie Memorial Fellowship [NSERC SMFSU 507347-17]
  10. McGill University Dawson Scholarship
  11. NSF of China [21461004]

向作者/读者索取更多资源

The properties and applications of metal-organic frameworks (MOFs) are strongly dependent on the nature of the metals and linkers, along with the specific conditions employed during synthesis. Al-fumarate, trade-marked as Basolite A520, is a porous MOF that incorporates aluminum centers along with fumarate linkers and is a promising material for applications involving adsorption of gases such as CO2. In this work, the solvothermal synthesis and detailed characterization of the gallium- and indium-fumarate MOFs (Ga-fumarate, In-fumarate) are described. Using a combination of powder X-ray diffraction, Rietveld refinements, solid-state NMR spectroscopy, IR spectroscopy, and thermogravimetric analysis, the topologies of Ga-fumarate and In-fumarate are revealed to be analogous to Al-fumarate. Ultra-wideline Ga-69, Ga-71, and In-115 NMR experiments at 21.1 T strongly support our refined structure. Adsorption isotherms show that the Al-, Ga-, and In-fumarate MOFs all exhibit an affinity for CO2, with Al-fumarate being the superior adsorbent at 1 bar and 273 K. Static direct excitation and cross-polarized C-13 NMR experiments permit investigation of CO2 adsorption locations, binding strengths, motional rates, and motional angles that are critical to increasing adsorption capacity and selectivity in these materials. Conducting the synthesis of the indium-based framework in methanol demonstrates a simple route to introduce porous hydrophobicity into a MIL-53-type framework by incorporation of metal-bridging -OCH3 groups in the MOF pores.

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