SURFACE-ACTIVE SITES OF V2O5-SNO2 CATALYSTS

被引:18
作者
OKADA, F
SATSUMA, A
FURUTA, A
MIYAMOTO, A
HATTORI, T
MURAKAMI, Y
机构
[1] NAGOYA UNIV,FAC ENGN,DEPT SYNTHET CHEM,FURO CHO,CHIKUSA KU,NAGOYA,AICHI 464,JAPAN
[2] JGC CORP,KINUURA RES DEPT,SUNOSAKI CHO,HANDA,AICHI 475,JAPAN
关键词
D O I
10.1021/j100378a055
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The surface active sites on V2O5-SnO2 catalysts, i.e., redox sites and acid sites, were investigated by using two series of catalysts prepared from different starting materials: Sn(OH)2 and SnO. By use of the NO-NH3 rectangular pulse technique, it was found that the surface concentration of the redox sites increases with the addition of SnO2, depending strongly on the starting materials at lower SnO2 content. Based on XRD, IR, ESR, XPS, and SIMS data, the increase in the redox sites is attributed to the reduction of vanadium oxide caused by atomic mixing of vanadium and tin oxides. The difference between the two series of catalysts is attributed to the degree of mixing, which may result from the difference in chemical processes during the calcination of precursor of the catalysts. The strengths, surface concentrations, and types of acid sites were determined by using NH3 TPD and IR of adsorbed NH3 and pyridine. The properties of the acid sites on the V2O5-SnO2 catalysts appear to be due just to those of pure V2O5 and SnO2. Finally, the effects of various promoters, i.e., P2O5, WO3, MoO3, and SnO2, on the redox sites are summarized, and two important factors responsible for the increase in the concentration of the redox sites are discussed: (1) the mixing of vanadium and promoter ions at the surface rather than the formation of intermediate compounds or solid solution in the bulk and (2) a redox function of the promoter oxides. © 1990 American Chemical Society.
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页码:5900 / 5908
页数:9
相关论文
共 72 条
[1]   OXIDATION ACTIVITY AND ACID-BASE PROPERTIES OF SNO-2-BASED BINARY CATALYSTS .1. SNO-2-V-2-O-5 SYSTEM [J].
AI, M .
JOURNAL OF CATALYSIS, 1975, 40 (03) :318-326
[2]   CARRIER EFFECT ON NATURE OF V4+ AND ACTIVE OXYGEN SPECIES IN VAPOR-PHASE OXIDATION OF BUTADIENE OVER SUPPORTED DIVANADIUM PENTAOXIDE CATALYSTS [J].
AKIMOTO, M ;
USAMI, M ;
ECHIGOYA, E .
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1978, 51 (08) :2195-2199
[3]   ACTIVITIES OF V-TI-O CATALYSTS IN THE AMMOXIDATION OF 3-PICOLINE [J].
ANDERSSON, A ;
LUNDIN, ST .
JOURNAL OF CATALYSIS, 1980, 65 (01) :9-15
[5]   STRUCTURAL DYNAMICS OF A V2O5-SNO2 CATALYST IN THE AMMOXIDATION OF 3-PICOLINE [J].
ANDERSSON, A .
JOURNAL OF CATALYSIS, 1981, 69 (02) :465-474
[6]   ACTIVITIES OF VANADIUM-OXIDES IN AMMOXIDATION OF 3-PICOLINE [J].
ANDERSSON, A ;
LUNDIN, ST .
JOURNAL OF CATALYSIS, 1979, 58 (03) :383-395
[7]   PHOTO-LUMINESCENCE AND PHOTO-REDUCTION OF V2O5 SUPPORTED ON POROUS VYCOR GLASS [J].
ANPO, M ;
TANAHASHI, I ;
KUBOKAWA, Y .
JOURNAL OF PHYSICAL CHEMISTRY, 1980, 84 (25) :3440-3443
[8]  
Boeh H.P., 1971, DISCUSS FARADAY SOC, V52, P264
[9]   VANADIUM PENTOXIDE TITANIUM DIOXIDE SYSTEM - STRUCTURAL INVESTIGATION AND ACTIVITY FOR THE OXIDATION OF BUTADIENE [J].
BOND, GC ;
SARKANY, AJ .
JOURNAL OF CATALYSIS, 1979, 57 (03) :476-493
[10]   THE VANADIUM PENTOXIDE TITANIUM-DIOXIDE SYSTEM .2. OXIDATION OF ORTHO-XYLENE ON A MONOLAYER CATALYST [J].
BOND, GC ;
KONIG, P .
JOURNAL OF CATALYSIS, 1982, 77 (02) :309-322