| Literature DB >> 31565709 |
Hannah F Drake1, Gregory S Day1, Shaik Waseem Vali2, Zhifeng Xiao1, Sayan Banerjee1, Jialuo Li1, Elizabeth A Joseph1, Jason E Kuszynski1, Zachary T Perry1, Angelo Kirchon1, Osman K Ozdemir3, Paul A Lindahl4, Hong-Cai Zhou5.
Abstract
Investigations into a thermally generated decarboxylation mechanism for metal site activation and the generation of mesopores in a carboxylate iron-based MOF, PCN-250, have been conducted. PCN-250 exhibits an interesting oxidation state change during thermal treatment under inert atmospheres or vacuum conditions, transitioning from an Fe(iii)3 cluster to a Fe(ii)Fe(iii)2 cluster. To probe this redox event and discern a mechanism of activation, a combination of thermogravimetric analysis, gas sorption, scanning electron microscopy, 57Fe Mössbauer spectroscopy, gas chromatography-mass spectrometry, and X-ray diffraction studies were conducted. The results suggest that the iron-site activation occurs due to ligand decarboxylation above 200 °C. This is also consistent with the generation of a missing cluster mesoporous defect in the framework. The resulting mesoporous PCN-250 maintains high thermal stability, preserving crystallinity after multiple consecutive high-temperature regeneration cycles. Additionally, the thermally reduced PCN-250 shows improvements in the total uptake capacity of methane and CO2.Entities:
Year: 2019 PMID: 31565709 PMCID: PMC7201376 DOI: 10.1039/c9cc04555d
Source DB: PubMed Journal: Chem Commun (Camb) ISSN: 1359-7345 Impact factor: 6.222