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Montmorillonite-supported Pd0, Fe0, Cu0 and Ag0 nanoparticles: Properties and affinity towards CO2

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Abstract This study reports the carbon dioxide (CO 2 ) adsorption on montmorillonite (NaMt) incorporating Cu 0 , Fe 0 , Pd 0 and Ag 0 as metallic nanoparticles (MNPs).… Click to show full abstract

Abstract This study reports the carbon dioxide (CO 2 ) adsorption on montmorillonite (NaMt) incorporating Cu 0 , Fe 0 , Pd 0 and Ag 0 as metallic nanoparticles (MNPs). The changes in structural, textural, morphological and adsorption properties of the resulting materials (NaMt-MNPs) were investigated. Electron microscopy and X-ray diffraction showed that dispersion of fine MNPs occurs mainly within the interlayer space of NaMt, producing a slight structure expansion. This was accompanied by a visible enhancement of the affinity towards CO 2 , as supported by thermal programmed desorption measurements. NaMt-MNPs displayed high CO 2 retention capacity (CRC) of ca. 657 μmol/g for NaMt-Cu as compared to NaMt. This was explained in terms of increased number of available adsorption sites due to enlarged interlayer spaces caused by MNP insertion. The differences in CO 2 adsorption capacities clearly demonstrate the key role of MNPs in improving the surface properties and adsorption capacity. The results reported herein open new prospects for clay supported metal nanoparticles as efficient adsorbents for CO 2 .

Keywords: fe0 cu0; adsorption; pd0 fe0; affinity towards; montmorillonite supported; supported pd0

Journal Title: Applied Surface Science
Year Published: 2017

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