The mechanism of low-temperature CO oxidation with Au/Fe2O3 catalysts: a combined Mössbauer, FT-IR, and TAP reactor study

化学 催化作用 碳酸氢盐 一氧化碳 穆斯堡尔谱学 吸附 解吸 傅里叶变换红外光谱 碳酸盐 无机化学 铁酸盐 反应机理 核化学 物理化学 化学工程 有机化学 结晶学 工程类
作者
S.T. Daniells,A.R. Overweg,Michiel Makkee,Jacob A. Moulijn
出处
期刊:Journal of Catalysis [Elsevier]
卷期号:230 (1): 52-65 被引量:188
标识
DOI:10.1016/j.jcat.2004.11.020
摘要

The gold-catalysed oxidation of carbon monoxide was studied by Mössbauer spectroscopy, in situ FTIR, and multiple time-resolved analysis of catalytic kinetics (MultiTRACK), an advanced TAP reactor system. The active catalyst studied was 3.4% Au/Fe2O3, which was used without drying and/or pretreatment. Mössbauer spectroscopy analysis of this sample showed that the fresh/as-received catalyst contained mostly Au3+ in the form of AuOOH⋅xH2O. Based on earlier studies, the support was proposed to be predominantly ferrihydrite, Fe5HO8 ⋅ 4H2O. In situ FTIR in the presence of CO and CO + O2 showed an initial increase in the bicarbonate regions, a decrease in carbonates, and a signal at 1640 cm−1, attributed to consumption of OH/H2O during the reaction. MultiTRACK analysis showed that with pulsing of CO onto a fresh catalyst sample, initially only a limited, irreversible amount of CO adsorbed. Adsorption of CO increased with increasing number of pulses, and CO2 production and, to a lesser extent, H2O were observed after significant surface coverage by CO. A mechanism is proposed that involves a carbonate/bicarbonate intermediate and enhancement of the rate with the presence of surface OH. The activity of the sample seems to be a function of the presence of OH species on the support, gold, or interface sites, the rate of desorption of CO2, or decomposition of surface carbonates.
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