Issue 4, 2015

Enhanced catalytic activity of hierarchically macro-/mesoporous Pt/TiO2 toward room-temperature decomposition of formaldehyde

Abstract

Hierarchically macro-/mesoporous Pt/TiO2 is prepared by hydrothermally treating the tetrabutyl titanate (Ti(OC4H9)4) precipitates in pure water, followed by a combined NaOH-assisted NaBH4-reduction deposition of Pt nanoparticles (NPs) on the TiO2 surface. The catalytic activity toward the catalytic decomposition of formaldehyde (HCHO) vapor in air at ambient temperature is evaluated. The prepared Pt/TiO2 catalyst exhibits excellent catalytic activity and recyclability, and 90.6% HCHO with an initial concentration of ca. 265 ppm can be completely decomposed within 60 min, which is significantly higher than that using commercial-grade Degussa P25 TiO2 with an equal Pt-loading amount (56.2% HCHO decomposition). The high catalytic activity can be mainly attributed to the hierarchically macro-/mesoporous structures of the TiO2 support with large specific surface area and optimal pore size. These characteristics not only enhance the adsorption of HCHO molecules, as well as facilitate the diffusion and transport of reactants and products, but also promote the dispersion of Pt NPs with small particle size inside and outside the pores. This study demonstrates that hierarchically macro-/mesoporous Pt/TiO2 can serve as an efficient catalyst for indoor HCHO decomposition and will provide new insights into the environmentally benign design and preparation of low-cost and high-performance catalysts for indoor air purification.

Graphical abstract: Enhanced catalytic activity of hierarchically macro-/mesoporous Pt/TiO2 toward room-temperature decomposition of formaldehyde

Article information

Article type
Paper
Submitted
22 Dec 2014
Accepted
29 Jan 2015
First published
29 Jan 2015

Catal. Sci. Technol., 2015,5, 2366-2377

Enhanced catalytic activity of hierarchically macro-/mesoporous Pt/TiO2 toward room-temperature decomposition of formaldehyde

L. Qi, W. Ho, J. Wang, P. Zhang and J. Yu, Catal. Sci. Technol., 2015, 5, 2366 DOI: 10.1039/C4CY01712A

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