High-performance and long-term stability of mesoporous Cu-doped TiO2 microsphere for catalytic CO oxidation
Journal
Journal of Hazardous Materials
Journal Volume
403
Date Issued
2021
Author(s)
Abstract
Although the low-temperature reaction mechanism of catalytic CO oxidation reaction remains unclear, the active sites of copper play a crucial role in this mechanism. One-step aerosol-assisted self-assembly (AASA) process has been developed for the synthesis of mesoporous Cu-doped TiO2 microspheres (CuTMS) to incorporate copper into the TiO2 lattice. This strategy highly enhanced the dispersion of copper from 41.10 to 83.65%. Long-term stability of the as-synthesized CuTMS materials for catalytic CO oxidation reaction was monitored using real-time mass spectrum. Isolated CuO and Cu-O-Ti were formed as determined by X-ray photoelectron spectroscopy (XPS). The formation of the Cu-O-Ti bonds in the crystal lattice changes the electron densities of Ti(IV) and O, causing a subsequent change in Ti(III)/Ti(IV) and Onon/OTotal ratio. 20CuTMS contained the highest lattice distortion (0.44) in which the Onon/OTotal ratio is lowest (0.18). This finding may be attributed to the absolute formation of the Cu-O-Ti bonds in the crystal lattice. However, the decrease of Ti(III)/Ti(IV) ratio to about 0.35 of 25CuTMS was caused by the CuO cluster formation on the surface. N2O titration-assisted H2 temperature-programmed reduction and in-situ Fourier transform infrared spectroscopy revealed the properties of copper and effects of active sites. ? 2020 Elsevier B.V.
Subjects
Catalytic oxidation; Copper; Copper oxides; Crystal lattices; Fourier transform infrared spectroscopy; Mass spectrometry; Microspheres; Oxidation; Oxide minerals; Temperature; Titanium dioxide; Titanium metallography; X ray photoelectron spectroscopy; Co oxidation; Cuo clusters; H2 temperature-programmed reduction; Lattice distortions; Long term stability; Low temperature reactions; Mass spectra; Mesoporous Cu; Copper metallography; acetic acid; alcohol; carbon monoxide; chloride; copper; microsphere; oxygen; titanium; titanium dioxide; carbon monoxide; catalysis; catalyst; detection method; electron; inorganic compound; low temperature; mesocosm; oxidation; temperature effect; aerosol; Article; catalysis; covalent bond; crystal structure; diffuse reflectance infrared Fourier transform spectroscopy; electron; environmental temperature; Fourier transform infrared spectroscopy; low temperature; oxidation; particle size; synthesis; temperature; X ray photoemission spectroscopy
Type
journal article