Mechanism of Carbon Monoxide Substitution in Metal Carbonyl Radicals: Vanadium Hexacarbonyl and Its Phosphine-Substituted Derivatives, Shi et al., J. Am. Chem. Soc., 106:71 (1984). |
Kinetics and Mechanism of Lewis Base Induced Disproportionation of Vanadium Hexacarbonyl and Its Phosphine-Substituted Derivatives, Richmond et al., J. Am. Chem. Soc., 106:76 (1984). |
Modification of Chemisorption Properties by Electronegative Adatoms: H.sub.2 and CO on Chlorided, Sulfided, and Phosphided Ni(100), Kiskinova et al., Surf. Sci., 108:64 (1981). |
Use of Absorption Entropy to Choose between Kinetic Mechanisms, and Rate Equations for Fischer-Tropsch Synthesis, Dadyburjor, J. Catal., 82:489 (1983). |
The Fischer-Tropsch Activity of Nickel-Zirconia, Bruce et al., Appln. Catal., 4:353 (1982). |
An Infrared Reflection-Absorption Study of CO Chemisorbed on Clean and Sulfided Ni(111)-Evidence for Local Surface Interactions, Trenary et al., Surf. Sci., 157:512 (1985). |
Summary Abstract: Correlation of Surface Electronic Properties and Poison/Promoter Effects on the Reactivity of NI(100), Houston et al., J. Vac. Sci. Technol., A2 (2):882 (1984). |
Kenetics of the Methanation of Carbon Monoxide on an Alumina-Supported Nickel Catalyst, Klose et al., J. Catal., 85:105 (1984). |
Kinetics, Isotope Effects, and Mechanism of the Hydrogenation of Carbon Monoxide on Supported Palladium Catalyst, Mori et al., J. Phys. Chem., 87:3648 (1983). |
Microscopic Model for the Poisoning and Promotion of Absorption Rates by Electronegative and Electropositive Atoms, Norskov et al., Surf. Sci., 137:65 (1984). |
A Comprehensive Mechanism for the Fischer-Tropsch Synthesis, Rofer-DePoorter, Chem. Rev., 81:447 (1981). |
Catalytic Reduction of Carbon Monoxide Over Potassium Modified Iron Surfaces, Dwyer et al., App. Surf. Sci., 19:14 (1984). |