Study of W/HZSM-5-based catalysts for dehydro-aromatization of CH4 in absence of O-2. II. Action of promoters Zn and Li

Citation
Zt. Xiong et al., Study of W/HZSM-5-based catalysts for dehydro-aromatization of CH4 in absence of O-2. II. Action of promoters Zn and Li, CATAL LETT, 74(3-4), 2001, pp. 233-239
Citations number
13
Categorie Soggetti
Physical Chemistry/Chemical Physics","Chemical Engineering
Journal title
CATALYSIS LETTERS
ISSN journal
1011372X → ACNP
Volume
74
Issue
3-4
Year of publication
2001
Pages
233 - 239
Database
ISI
SICI code
1011-372X(2001)74:3-4<233:SOWCFD>2.0.ZU;2-V
Abstract
By correlating the results of the NH3-TPD characteristic study and the cata lyst activity assay of the W/HZSM-5-based catalysts, we confirmed that the intensity and concentration of the surface B-acid sites have pronounced eff ects on the catalyst performance for dehydroaromatization of methane (DHAM) . It was found experimentally that, by addition of a proper amount of Mg2+, the strong B-acid sites at the catalyst surface could be effectively elimi nated, whereas the addition of a proper amount of Zn2+ or Li+ resulted not only in eliminating most of the strong surface B-acid sites but also in gen erating a kind of new medium-strong acid sites, mostly B-acid sites, simult aneously. The latter could serve as the catalytically active sites for dehy dro-aromatization of methane; on such medium-strong surface B-acid sites, t he formation of coke would be also alleviated to a greater extent. By simul taneous addition of Mg2+ and Zn2+, optimized adjustment in surface acidity of the catalyst could be realized. On the other hand, the doping of the Zn2 + or Li+ component to the tungsten oxide matrix would facilitate inhibiting aggregation of the W-containing active species and improving dispersion of the W component at the surface of the catalyst, thus leading to a pronounc ed decrease in the reduction temperature for the hard-to-be-reduced W6+ spe cies and an increase in quantity of the reducible W6+ species at the reacti on temperature for DHAM, as has been evidenced by the results of a H-2-TPR study on the reducibility of the Zn2+ (or La3+, Li+, Mn2+)-promoted W/HZSM- 5 system. The above two roles that Zn2+ and Li+ as promoters played both co ntributed to the persistence of high methane conversion and benzene selecti vity, and the alleviation of coke deposition, as well as the prolongation o f the catalyst lifetime.