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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/100390


    Title: Preferential oxidation of CO in H2 stream on Au/ZnO-TiO 2 catalysts
    Authors: 陳郁文;Chen, Yu-Wen;Lee, Der-Shing;Chen, Hsin-Ju
    Contributors: 工學院化學工程與材料工程學系
    Keywords: Alternative fuels. Production and utilization;Applied sciences;CO oxidation;Energy;Exact sciences and technology;Fuels;Gold catalyst;Hydrogen;Nanometal;TiO2;ZnO
    Date: 2012-10-01
    Issue Date: 2026-04-21 14:00:16 (UTC+8)
    Publisher: Elsevier Ltd.;Kidlington: Elsevier Ltd
    Abstract: 摘要: A series of gold catalysts supported on ZnO–TiO2 with various ZnO contents were prepared. ZnO–TiO2 was prepared by incipient-wetness impregnation using aqueous solution of Zn(NO3)2 onto TiO2. Gold catalysts with nominal gold loading of 1 wt. % were prepared by deposition-precipitation (DP) method. Various preparation parameters, such as pH value and Zn/Ti ratio on the characteristics of the catalysts were investigated. The catalysts were characterized by inductively-coupled plasma–mass spectrometry, X-ray diffraction, X-ray photoelectron spectroscopy, transmission electron microscopy and high-resolution transmission electron microscopy. The preferential oxidation of CO in H2 stream (PROX) on these catalysts was carried out in a fixed bed micro-reactor with a feed of CO: O2: H2: He = 1: 1: 49: 49 (volume ratios) and a space velocity of 30,000 ml/g h. Limited amount of oxygen was used in the feed. A high gold dispersion and narrow gold particle size distribution was obtained. Au/ZnO–TiO2 with Zn/Ti atomic ratio of 5/95 showed the highest CO conversion at room temperature. The conversion increased with increasing temperature even in the presence of limited amount of oxygen, showing suppression in H2 oxidation. Au/ZnO–TiO2 prepared at pH 6 had a higher CO conversion and higher selectivity of CO oxidation than those prepared at other pH values. The addition of ZnO on TiO2 resulted in higher dispersion of gold particles and narrow particle size distribution. The stronger the Au–Zn(OH)2 interaction, the finer the supported Au nanoparticles, and the better the catalytic performance of the catalyst for PROX reaction. Part of Au was in Au+ state due to the interaction with Zn(OH)2 and nano Au size. The oxidation state of gold species played an important role in determining its CO conversion and selectivity of CO oxidation in hydrogen stream. The catalysts were stable at 80 °C for more than 80 h. ► Part of Au was in Au+ state due to the interaction with Zn(OH)2 and nano Au size. ► The presence of Zn(OH)2 could stabilize this Au+ species. ► CO and O2 could adsorb on this site and react with each other. ► The stronger the Au–Zn(OH)2 interaction, the better the performance of the catalyst.
    出版者: Kidlington: Elsevier Ltd
    出版日期: 2012-10
    出處: International Journal of Hydrogen Energy, 2012-10, Vol.37 (20), p.15140-15155
    資源來源: ScienceDirect - Freedom Collection
    版權: 2012 Hydrogen Energy Publications, LLC.
    版權: 2014 INIST-CNRS
    識別號: ISSN: 0360-3199
    識別號: EISSN: 1879-3487
    識別號: DOI: 10.1016/j.ijhydene.2012.08.003
    識別號: CODEN: IJHEDX
    Appears in Collections:[Department of Chemical and Materials Engineering] journal & Dissertation

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