期刊
ACS CATALYSIS
卷 7, 期 4, 页码 2709-2719出版社
AMER CHEMICAL SOC
DOI: 10.1021/acscatal.6b03512
关键词
Fe/ZSM-5; nanosheet; benzene oxidation; deactivation; Fe content
资金
- China Scholarship Council
- TOP grant of the Chemical Sciences division of The Netherlands Organization for Scientific Research
Fe/ZSM-5 nanosheet zeolites of varying thickness were synthesized with di- and tetraquaternary ammonium structure directing agents and extensively characterized for their textural, structural, and catalytic properties. Introduction of Fe3+ ions in the framework of nanosheet zeolites was slightly less effective than in bulk ZSM-5 zeolite. Steaming was necessary to activate all catalysts for N2O decomposition and benzene oxidation. The higher the Fe content, the higher the degree of Fe aggregation was after catalyst activation. The degree of Fe aggregation was lower when the crystal domain size of the zeolite or the Fe content was decreased. These two parameters had a substantial influence on the catalytic performance. Decreasing the number of Fe sites along the b-direction strongly suppressed secondary reactions of phenol and, accordingly, catalyst deactivation. This together with the absence of diffusional limitations in nanosheet zeolites explains the much higher phenol productivity obtainable with nanostructured Fe/ZSM-5. Steamed Fe/ZSM-5. zeolite nanosheet synthesized using C-22.6.3 center dot Br-2 (domain site in b-direction similar to 3 nm) and containing 0.24 wt % Fe exhibited the highest catalytic performance. During the first 24 h on stream, this catalyst produced 185 mmol(phenol) g(-1). Calcination to remove the coke deposits completely restored the initial activity.
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