4.7 Article

Carboxylic Group Rotation and Lattice Expansion in a Co2(Pyrazine-2,3-Dicarboxylate)2(4,4′-Bipyridine) Porous Coordination Polymer Induced by CO2 Adsorption at Ambient Temperature

Journal

CRYSTAL GROWTH & DESIGN
Volume 22, Issue 4, Pages 2382-2391

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.cgd.1c01460

Keywords

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Funding

  1. National Aeronautics and Space Administration [NNX13AD38A]
  2. U.S. DOE [DE-AC02-06CH11357]

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A Co-2(pzdc)(2)(bpy)(H2O)(m) porous coordination polymer was studied for CO2 uptake, and the results showed that its adsorption capacity doubled and exhibited hysteresis. The material also displayed good thermal stability at high temperatures.
A Co-2(pzdc)(2)(bpy)(H2O)(m) (pzdc: pyrazine-2,3dicarboxylate; bpy: 4,4'-bipyridine) porous coordination polymer (PCP) was studied for CO2 uptake and concomitant structural changes at ambient temperature. Extended structural characterization included evaluation of lattice parameter changes upon CO2 adsorption and in situ synchrotron X-ray powder diffraction data. The PCP effective pore size increased by similar to 2% with gas uptake over the pressure range of 1-50 atm, allowing the adsorption capacity to double. Furthermore, the hysteretic behaviors seen during CO2 adsorption at moderate pressures are commensurate with the structural changes from synchrotron data. The adsorption and hysteresis occur with rotation of the linking carboxylate groups, and yet only minor changes in unit cell volume (Delta V approximate to 6 angstrom(3)) are observed. This contrasts the findings for [Cu-2(pzdc)(2)(bpy)](n), where a combination of pillar bpy rotations and significant lattice expansion (Delta V approximate to 68 angstrom(3)) takes place upon hysteretic adsorption of CO2. In situ high-temperature X-ray diffraction revealed that the Co(II)-based material has good thermal stability up to ca. 200 degrees C. Finally, the CO2 uptake also appears to be at a physisorption level, with adsorbent-adsorbate interactions that are ca. 30% stronger than what has been reported for CO2 adsorption onto [Cu-2(pzdc)(2)(bpy)](n).

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