4.8 Article

Harnessing Adsorption-Catalysis Synergy: Efficient Oxidative Removal of Gaseous Formaldehyde by a Manganese Dioxide/Metal-Organic Framework Nanocomposite at Room Temperature

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 32, 期 22, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202107922

关键词

catalysis; formaldehyde; indoor air; metal-organic frameworks; volatile organic compounds

资金

  1. National Research Foundation of Korea (NRF) - Ministry of Science and ITC of the Korean government [2021R1A3B1068304]

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The potential utility of a transition metal oxide/metal-organic framework nanocomposite for the removal of formaldehyde from the air has been explored. The results show that the nanocomposite with a certain loading of MnO2 exhibits high efficiency in removing formaldehyde, surpassing other well-known catalysts.
The potential utility of a transition metal oxide/metal-organic framework (MOF) nanocomposite has been explored using manganese dioxide (MnO2)/Universitetet i Oslo (UiO)-66-amine (NH2 (prototypical zirconium (Zr) MOF)) to develop an efficient adsorption-catalysis system for the removal of formaldehyde (FA) from the air. The room-temperature FA (100 ppm) conversion (X-FA (%)), when tested using five different MnO2 (wt%) loadings in the nanocomposite, is estimated as: 1% MnO2 (88%) > 2% MnO2 (86%) > 4% MnO2 (84%) > 6% MnO2 (75%) > 20% MnO2 (47%). The FA removal performance is lowered as the active catalytic sites are covered with the increases in the MnO2 loading (e.g., >1 wt%). The FA and molecular oxygen species preferably adsorb (and activate) onto the Zr atoms attached to the NH2 groups. The oxidation of FA into carbon dioxide proceeds subsequently through the formation of intermediates (e.g., dioxymethylene and formate). The MnO2 nanoclusters act as secondary reactive adsorption sites to boost the capture, activation, and oxidation of the FA molecules at the Zr active centers. Accordingly, the MnO2/UiO-66-NH2 nanocomposite is demonstrated to effectively harness the adsorption-catalysis synergy for highly efficient removal of FA relative to other well-known catalysts (e.g., platinum and metal oxide-based nanomaterials).

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