The role and stability of Li2O2 phase in supported LiCl catalyst in oxidative dehydrogenation of n-butane

被引:14
作者
Landau, MV
Gutman, A
Herskowitz, M
Shuker, R
Bitton, Y
Mogilyansky, D
机构
[1] Ben Gurion Univ Negev, Dept Chem Engn, Blechner Ctr Ind Catalysis & Proc Dev, IL-84105 Beer Sheva, Israel
[2] Ben Gurion Univ Negev, Dept Phys, IL-84105 Beer Sheva, Israel
[3] Ben Gurion Univ Negev, Inst Appl Res, IL-84105 Beer Sheva, Israel
关键词
oxidative dehydrogenation; n-butane; lithium peroxide; SiO2; MgO-supported catalyst; XRD; XPS; Raman scattering spectroscopy;
D O I
10.1016/S1381-1169(01)00241-2
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
This study was aimed at defining the role of active phases in supported LiCl and LiCl-DyCl3 catalysts in the catalytic oxidative dehydrogenation (ODH) of n-butane. LiCl supported on silica displayed the highest activity and selectivity in n-butane ODH compared with other alkali metal halides. Addition of DYCl3 increased the activity. TPO, XRD and Raman light scattering (RLS) data showed that LiCl and DyCl3 formed during the preparation stage were converted to Li2O2 and DyOCl phases, respectively, by calcination in air at > 400 degreesC. The results of separate TPR experiments (O-2-oxidation-butane reduction) along with XRD, RLS and X-ray photoelectron spectroscopy (XPS) data proved that butane reacts mainly with oxygen species of Li2O2 phase at ODH conditions, probably attributed to [Li+O-] pairs. The proposed functions of chlorine and dynamic oxygen in the ODH of butane are consistent with the activity, selectivity and stability of silica and magnesia-supported catalysts. High thermal stability of Li2O2 in oxidized LiCl catalyst was attributed to the formation of protective Li2O-LiCl surface layer. Deactivation of LiCl/SiO2 catalyst in n-butane,ODH is caused by the formation of Li-silicates at reaction conditions while LiCl/MgO display a stable performance. (C) 2001 Elsevier Science B.V.. All rights reserved.
引用
收藏
页码:127 / 139
页数:13
相关论文
共 24 条
[1]   Spectroscopic characterization of silicalite-1 and titanium silicalite-1 [J].
Astorino, E ;
Peri, JB ;
Willey, RJ ;
Busca, G .
JOURNAL OF CATALYSIS, 1995, 157 (02) :482-500
[2]   Production of olefins via oxidative dehydrogenation of light paraffins at short contact times [J].
Beretta, A ;
Ranzi, E ;
Forzatti, P .
CATALYSIS TODAY, 2001, 64 (1-2) :103-111
[3]   Oxidative dehydrogenation of light paraffins in novel short contact time reactors. Experimental and theoretical investigation [J].
Beretta, A ;
Ranzi, E ;
Forzatti, P .
CHEMICAL ENGINEERING SCIENCE, 2001, 56 (03) :779-787
[4]  
Blumenthal M., 1932, ROCZNIKI CHEM, V12, P119
[5]   An XRD, XPS, and EPR study of Li/MgO catalysts:: Case of the oxidative methylation of acetonitrile to acrylonitrile with CH4 [J].
Bothe-Almquist, CL ;
Ettireddy, RP ;
Bobst, A ;
Smirniotis, PG .
JOURNAL OF CATALYSIS, 2000, 192 (01) :174-184
[6]   THE OXIDATIVE DEHYDROGENATION OF ETHANE AND PROPANE AS AN ALTERNATIVE WAY FOR THE PRODUCTION OF LIGHT OLEFINS [J].
CAVANI, F ;
TRIFIRO, F .
CATALYSIS TODAY, 1995, 24 (03) :307-313
[7]  
CONWAY CJ, 1991, APPL CATAL, V79, pL1
[8]  
Delmon B, 1997, STUD SURF SCI CATAL, V110, P43
[9]   RAMAN-SPECTRA OF PEROXIDES [J].
EYSEL, HH ;
THYM, S .
ZEITSCHRIFT FUR ANORGANISCHE UND ALLGEMEINE CHEMIE, 1975, 411 (02) :97-102
[10]  
FOX DB, 1973, CHEMTECH, V3, P186