173 - 178 |
Activity, selectivity and attrition characteristics of supported iron Fischer-Tropsch catalysts O'Brien RJ, Xu LG, Bao SQ, Raje A, Davis BH |
179 - 190 |
Monopropellant decomposition catalysts II. Sintering studies on Ir/Al2O3 catalysts, influence of chloride anions Balcon S, Mary S, Kappenstein C, Gengembre E |
191 - 198 |
Preparation and characterization of alumina and chromia cryogel-based catalysts Kirchnerova J, Klvana D, Chaouki J |
199 - 207 |
Catalysis of ultrafine CuB catalyst for hydrogenation of olefinic and carbonyl groups Liaw BJ, Chen YZ |
209 - 215 |
Temperature-programmed desorption study of water-gas shift and methane steam-reforming reactions over Li/MgO catalyst Balint I, Aika K |
217 - 224 |
The direct epoxidation of propene by molten salts Nijhuis TA, Musch S, Makkee M, Moulijn JA |
225 - 231 |
n-butane isomerization over H-mordenite: role of the monomolecular mechanism Canizares P, de Lucas A, Dorado E |
233 - 246 |
Application of metal-exchanged zeolites in removal of emissions from combustion of biofuels Neyestanaki AK, Lindfors LE, Ollonqvist T, Vayrynen J |
247 - 260 |
Enhanced surface acidity in mixed alumina-silicas: a low-temperature FTIR study Daniell W, Schubert U, Glockler R, Meyer A, Noweck K, Knozinger H |
261 - 269 |
Catalysis assisted characterizations of nanosized TiO2-Al2O3 mixtures obtained in molten alkali metal nitrates - Effect of the metal precursor Harle V, Vrinat M, Scharff JP, Durand B, Deloume JP |
271 - 280 |
Adsorption isobars for CO on a Pt/Al2O3 catalyst at high temperatures using FTIR spectroscopy: isosteric heat of adsorption and adsorption model Dulaurent O, Bianchi D |
281 - 292 |
Preparation and characterization of manganese oxide catalysts supported on alumina and zirconia-pillared clays Gandia LM, Vicente MA, Gil A |
293 - 303 |
Water-gas shift reaction over sulfided molybdenum catalysts I. Alumina, titania and zirconia-supported catalysts Laniecki M, Malecka-Grycz M, Domka F |
L167 - L172 |
Highly active and stable Ni/ZrO2 catalyst for syngas production by CO2 reforming of methane Wei JM, Xu BQ, Li JL, Cheng ZX, Zhu QM |