4.8 Article

Overcoming double-step CO2 adsorption and minimizing water co-adsorption in bulky diamine-appended variants of Mg-2(dobpdc)

Journal

CHEMICAL SCIENCE
Volume 9, Issue 1, Pages 160-174

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7sc04266c

Keywords

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Funding

  1. ExxonMobil Research and Engineering Company
  2. Advanced Research Projects Agency - Energy (ARPA-E), U.S. Department of Energy [DE-AR00040]
  3. Center for Gas Separations Relevant to Clean Energy Technologies, an Energy Frontier Research Center - U.S. Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences [DE-SC0001015]
  4. Office of Science, Office of Basic Energy Sciences, of the DOE [DE-AC02-05CH11231]
  5. National Institute of General Medical Sciences of the National Institutes of Health [F32GM120799]
  6. Miller Institute for Basic Research in Science
  7. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [F32GM120799] Funding Source: NIH RePORTER

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Alkyldiamine-functionalized variants of the metal-organic framework Mg-2(dobpdc) (dobpdc(4-) = 4,4'dioxidobiphenyl-3,3'-dicarboxylate) are promising for CO2 capture applications owing to their unique step-shaped CO2 adsorption profiles resulting from the cooperative formation of ammonium carbamate chains. Primary, secondary (1 degrees(,)2 degrees) alkylethylenediamine-appended variants are of particular interest because of their low CO2 step pressures (<= 1 mbar at 40 degrees C), minimal adsorption/desorption hysteresis, and high thermal stability. Herein, we demonstrate that further increasing the size of the alkyl group on the secondary amine affords enhanced stability against diamine volatilization, but also leads to surprising two-step CO2 adsorption/desorption profiles. This two-step behavior likely results from steric interactions between ammonium carbamate chains induced by the asymmetrical hexagonal pores of Mg-2(dobpdc) and leads to decreased CO2 working capacities and increased water co-adsorption under humid conditions. To minimize these unfavorable steric interactions, we targeted diamine-appended variants of the isoreticularly expanded framework Mg-2(dotpdc) (dotpdc(4-) - 4,4-dioxido-[1,1': 4',1-terphenyl]- 3,3-dicarboxylate), reported here for the first time, and the previously reported isomeric framework Mg-IRMOF-74-II or Mg-2(pc-dobpdc) (pc-dobpdc(4-) = 3,3'-dioxidobiphenyl-4,4'dicarboxylate, pc = para-carboxylate), which, in contrast to Mg-2(dobpdc), possesses uniformally hexagonal pores. By minimizing the steric interactions between ammonium carbamate chains, these frameworks enable a single CO2 adsorption/desorption step in all cases, as well as decreased water co-adsorption and increased stability to diamine loss. Functionalization of Mg-2(pc-dobpdc) with large diamines such as N-(n-heptyl) ethylenediamine results in optimal adsorption behavior, highlighting the advantage of tuning both the pore shape and the diamine size for the development of new adsorbents for carbon capture applications.

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